US20230161993A1 - Antenna connection for integrated rfid tag and tpms sensor - Google Patents
Antenna connection for integrated rfid tag and tpms sensor Download PDFInfo
- Publication number
- US20230161993A1 US20230161993A1 US18/047,339 US202218047339A US2023161993A1 US 20230161993 A1 US20230161993 A1 US 20230161993A1 US 202218047339 A US202218047339 A US 202218047339A US 2023161993 A1 US2023161993 A1 US 2023161993A1
- Authority
- US
- United States
- Prior art keywords
- circuit board
- printed circuit
- slot
- antenna wire
- antenna
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
Links
Images
Classifications
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q1/00—Details of, or arrangements associated with, antennas
- H01Q1/12—Supports; Mounting means
- H01Q1/22—Supports; Mounting means by structural association with other equipment or articles
- H01Q1/2208—Supports; Mounting means by structural association with other equipment or articles associated with components used in interrogation type services, i.e. in systems for information exchange between an interrogator/reader and a tag/transponder, e.g. in Radio Frequency Identification [RFID] systems
- H01Q1/2241—Supports; Mounting means by structural association with other equipment or articles associated with components used in interrogation type services, i.e. in systems for information exchange between an interrogator/reader and a tag/transponder, e.g. in Radio Frequency Identification [RFID] systems used in or for vehicle tyres
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60C—VEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
- B60C23/00—Devices for measuring, signalling, controlling, or distributing tyre pressure or temperature, specially adapted for mounting on vehicles; Arrangement of tyre inflating devices on vehicles, e.g. of pumps or of tanks; Tyre cooling arrangements
- B60C23/02—Signalling devices actuated by tyre pressure
- B60C23/04—Signalling devices actuated by tyre pressure mounted on the wheel or tyre
- B60C23/0408—Signalling devices actuated by tyre pressure mounted on the wheel or tyre transmitting the signals by non-mechanical means from the wheel or tyre to a vehicle body mounted receiver
- B60C23/0422—Signalling devices actuated by tyre pressure mounted on the wheel or tyre transmitting the signals by non-mechanical means from the wheel or tyre to a vehicle body mounted receiver characterised by the type of signal transmission means
- B60C23/0433—Radio signals
- B60C23/0447—Wheel or tyre mounted circuits
- B60C23/0452—Antenna structure, control or arrangement
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01L—MEASURING FORCE, STRESS, TORQUE, WORK, MECHANICAL POWER, MECHANICAL EFFICIENCY, OR FLUID PRESSURE
- G01L17/00—Devices or apparatus for measuring tyre pressure or the pressure in other inflated bodies
-
- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06K—GRAPHICAL DATA READING; PRESENTATION OF DATA; RECORD CARRIERS; HANDLING RECORD CARRIERS
- G06K19/00—Record carriers for use with machines and with at least a part designed to carry digital markings
- G06K19/06—Record carriers for use with machines and with at least a part designed to carry digital markings characterised by the kind of the digital marking, e.g. shape, nature, code
- G06K19/067—Record carriers with conductive marks, printed circuits or semiconductor circuit elements, e.g. credit or identity cards also with resonating or responding marks without active components
- G06K19/07—Record carriers with conductive marks, printed circuits or semiconductor circuit elements, e.g. credit or identity cards also with resonating or responding marks without active components with integrated circuit chips
- G06K19/077—Constructional details, e.g. mounting of circuits in the carrier
- G06K19/07749—Constructional details, e.g. mounting of circuits in the carrier the record carrier being capable of non-contact communication, e.g. constructional details of the antenna of a non-contact smart card
- G06K19/0775—Constructional details, e.g. mounting of circuits in the carrier the record carrier being capable of non-contact communication, e.g. constructional details of the antenna of a non-contact smart card arrangements for connecting the integrated circuit to the antenna
- G06K19/07754—Constructional details, e.g. mounting of circuits in the carrier the record carrier being capable of non-contact communication, e.g. constructional details of the antenna of a non-contact smart card arrangements for connecting the integrated circuit to the antenna the connection being galvanic
-
- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06K—GRAPHICAL DATA READING; PRESENTATION OF DATA; RECORD CARRIERS; HANDLING RECORD CARRIERS
- G06K19/00—Record carriers for use with machines and with at least a part designed to carry digital markings
- G06K19/06—Record carriers for use with machines and with at least a part designed to carry digital markings characterised by the kind of the digital marking, e.g. shape, nature, code
- G06K19/067—Record carriers with conductive marks, printed circuits or semiconductor circuit elements, e.g. credit or identity cards also with resonating or responding marks without active components
- G06K19/07—Record carriers with conductive marks, printed circuits or semiconductor circuit elements, e.g. credit or identity cards also with resonating or responding marks without active components with integrated circuit chips
- G06K19/077—Constructional details, e.g. mounting of circuits in the carrier
- G06K19/07749—Constructional details, e.g. mounting of circuits in the carrier the record carrier being capable of non-contact communication, e.g. constructional details of the antenna of a non-contact smart card
- G06K19/07758—Constructional details, e.g. mounting of circuits in the carrier the record carrier being capable of non-contact communication, e.g. constructional details of the antenna of a non-contact smart card arrangements for adhering the record carrier to further objects or living beings, functioning as an identification tag
- G06K19/07764—Constructional details, e.g. mounting of circuits in the carrier the record carrier being capable of non-contact communication, e.g. constructional details of the antenna of a non-contact smart card arrangements for adhering the record carrier to further objects or living beings, functioning as an identification tag the adhering arrangement making the record carrier attachable to a tyre
-
- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06K—GRAPHICAL DATA READING; PRESENTATION OF DATA; RECORD CARRIERS; HANDLING RECORD CARRIERS
- G06K19/00—Record carriers for use with machines and with at least a part designed to carry digital markings
- G06K19/06—Record carriers for use with machines and with at least a part designed to carry digital markings characterised by the kind of the digital marking, e.g. shape, nature, code
- G06K19/067—Record carriers with conductive marks, printed circuits or semiconductor circuit elements, e.g. credit or identity cards also with resonating or responding marks without active components
- G06K19/07—Record carriers with conductive marks, printed circuits or semiconductor circuit elements, e.g. credit or identity cards also with resonating or responding marks without active components with integrated circuit chips
- G06K19/077—Constructional details, e.g. mounting of circuits in the carrier
- G06K19/07749—Constructional details, e.g. mounting of circuits in the carrier the record carrier being capable of non-contact communication, e.g. constructional details of the antenna of a non-contact smart card
- G06K19/07773—Antenna details
-
- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06K—GRAPHICAL DATA READING; PRESENTATION OF DATA; RECORD CARRIERS; HANDLING RECORD CARRIERS
- G06K19/00—Record carriers for use with machines and with at least a part designed to carry digital markings
- G06K19/06—Record carriers for use with machines and with at least a part designed to carry digital markings characterised by the kind of the digital marking, e.g. shape, nature, code
- G06K19/067—Record carriers with conductive marks, printed circuits or semiconductor circuit elements, e.g. credit or identity cards also with resonating or responding marks without active components
- G06K19/07—Record carriers with conductive marks, printed circuits or semiconductor circuit elements, e.g. credit or identity cards also with resonating or responding marks without active components with integrated circuit chips
- G06K19/077—Constructional details, e.g. mounting of circuits in the carrier
- G06K19/07749—Constructional details, e.g. mounting of circuits in the carrier the record carrier being capable of non-contact communication, e.g. constructional details of the antenna of a non-contact smart card
- G06K19/07773—Antenna details
- G06K19/07786—Antenna details the antenna being of the HF type, such as a dipole
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q1/00—Details of, or arrangements associated with, antennas
- H01Q1/12—Supports; Mounting means
- H01Q1/1207—Supports; Mounting means for fastening a rigid aerial element
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q1/00—Details of, or arrangements associated with, antennas
- H01Q1/36—Structural form of radiating elements, e.g. cone, spiral, umbrella; Particular materials used therewith
- H01Q1/362—Structural form of radiating elements, e.g. cone, spiral, umbrella; Particular materials used therewith for broadside radiating helical antennas
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q1/00—Details of, or arrangements associated with, antennas
- H01Q1/36—Structural form of radiating elements, e.g. cone, spiral, umbrella; Particular materials used therewith
- H01Q1/38—Structural form of radiating elements, e.g. cone, spiral, umbrella; Particular materials used therewith formed by a conductive layer on an insulating support
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q9/00—Electrically-short antennas having dimensions not more than twice the operating wavelength and consisting of conductive active radiating elements
- H01Q9/04—Resonant antennas
- H01Q9/16—Resonant antennas with feed intermediate between the extremities of the antenna, e.g. centre-fed dipole
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q9/00—Electrically-short antennas having dimensions not more than twice the operating wavelength and consisting of conductive active radiating elements
- H01Q9/04—Resonant antennas
- H01Q9/30—Resonant antennas with feed to end of elongated active element, e.g. unipole
- H01Q9/42—Resonant antennas with feed to end of elongated active element, e.g. unipole with folded element, the folded parts being spaced apart a small fraction of the operating wavelength
-
- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K1/00—Printed circuits
- H05K1/02—Details
- H05K1/11—Printed elements for providing electric connections to or between printed circuits
- H05K1/111—Pads for surface mounting, e.g. lay-out
-
- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K1/00—Printed circuits
- H05K1/18—Printed circuits structurally associated with non-printed electric components
- H05K1/181—Printed circuits structurally associated with non-printed electric components associated with surface mounted components
-
- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K2201/00—Indexing scheme relating to printed circuits covered by H05K1/00
- H05K2201/09—Shape and layout
- H05K2201/09009—Substrate related
- H05K2201/09036—Recesses or grooves in insulating substrate
-
- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K2201/00—Indexing scheme relating to printed circuits covered by H05K1/00
- H05K2201/10—Details of components or other objects attached to or integrated in a printed circuit board
- H05K2201/10007—Types of components
- H05K2201/10098—Components for radio transmission, e.g. radio frequency identification [RFID] tag, printed or non-printed antennas
-
- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K2201/00—Indexing scheme relating to printed circuits covered by H05K1/00
- H05K2201/10—Details of components or other objects attached to or integrated in a printed circuit board
- H05K2201/10007—Types of components
- H05K2201/10151—Sensor
Definitions
- the invention relates to tires and components for tires. More particularly, the invention relates to components for tire identification and the monitoring of tire pressure. Specifically, the invention is directed to an integrated radio frequency identification tag and tire pressure monitoring system sensor that includes an antenna connection to a printed circuit board which provides secure and consistent placement and alignment of the antenna for optimum performance.
- Pneumatic tires have been widely employed. Such tires include a pair of beads that are mounted on a wheel or rim. Each one of pair of sidewalls extends from a respective bead to a ground-engaging tread. A carcass, which is made of one or more plies, toroidally extends between the beads to reinforce the sidewalls and the tread. An innerliner is formed on the inside surface of the carcass. The wheel cooperates with the innerliner to define an interior or tire cavity that is inflated with air.
- RFID radio frequency identification
- RFID tags include an integrated circuit for storing and processing information and an antenna for receiving and transmitting a signal to an external reader using a radio frequency.
- the antenna is electronically connected to the integrated circuit and typically is carried on a substrate with the integrated circuit, such as a circuit board.
- RFID tags were attached to the exterior of a sidewall of a pneumatic tire.
- the exterior of a tire sidewall provides a convenient location that enables strong transmission of the signal from the RFID tag to an RFID reader, which is separate from the tire.
- the RFID tag may incur potential damage when it is attached to the exterior of a tire sidewall. To reduce such potential damage, it has become desirable to attach the RFID tag to an interior structure of the tire.
- TPMS tire pressure monitoring systems
- Many TPMS configurations employ a pressure and/or temperature sensor that is mounted to the tire, which is referred to as a TPMS sensor. Due to power and communication requirements of TPMS sensors, TPMS units have been separate from RFID tags. However, mounting of separate TPMS sensors and RFID tags in a tire is undesirable.
- the integrated RFID tag and TPMS sensor includes a printed circuit board and a coil antenna that is electronically attached to the printed circuit board.
- the antenna coil has been directly placed on the printed circuit board and solder has been applied to bond the antenna to the surface of the printed circuit board.
- the efficiency and performance of the integrated RFID tag and TPMS sensor may be significantly affected by issues encountered with the prior art attachment technique.
- the coil antenna may be difficult to place at a repeatable, exact location on the printed circuit board, creating difficulty in installation and leading to undesirable variation in alignment and antenna length. Such variation in turn may interfere with the performance of the integrated RFID tag and TPMS sensor.
- the antennas are typically soldered to separate areas on the surface of the printed circuit board. The separate areas may create a different wave form contact between the two antennas, which may impair the efficiency and performance of the antennas.
- an integrated radio frequency identification tag and tire pressure monitoring system sensor that includes an antenna connection to a printed circuit board which provides consistent placement and alignment of the antenna for optimum performance.
- an integrated radio frequency identification tag and tire pressure monitoring system sensor includes a radio frequency identification tag.
- the radio frequency identification tag includes an integrated circuit, and a printed circuit board carries the integrated circuit.
- a tire pressure monitoring system sensor is mounted on the radio frequency identification tag.
- An antenna includes at least one coil antenna wire, in which the at least one antenna wire is formed in a helical shape and is electrically connected to the integrated circuit.
- the at least one antenna wire includes a first end that is mounted to the printed circuit board.
- a mechanical interlock between the first end of the antenna wire and the printed circuit board includes features that secure the first end of the antenna wire to the printed circuit board.
- “Circumferential” means lines or directions extending along the perimeter of the surface of the annular tread perpendicular to the axial direction.
- “Inboard” refers to the axial inner surface of the tire as mounted on the vehicle.
- Innerliner means the layer or layers of elastomer or other material that form the inside surface of a tubeless tire and that contain the inflating fluid within the tire.
- Outboard refers to the axial outer surface of the tire as mounted on a vehicle.
- Ring and radially mean lines or directions that are perpendicular to the axis of rotation of the tire.
- RFID radio frequency identification
- TPMS means a tire pressure monitoring system
- FIG. 1 is a cross-sectional view of an exemplary pneumatic tire with a first exemplary embodiment of an integrated RFID tag and TPMS sensor of the present invention
- FIG. 2 A is a plan view of an integrated RFID tag and TPMS sensor of the prior art
- FIG. 2 B is an enlarged plan view of a portion of the integrated RFID tag and TPMS sensor shown in FIG. 2 A ;
- FIG. 2 C is an end view of the integrated RFID tag and TPMS sensor shown in FIG. 2 A ;
- FIG. 2 D is an enlarged end view of a portion of the integrated RFID tag and TPMS sensor shown in FIG. 2 C ;
- FIG. 3 A is a plan view of a first exemplary embodiment of an integrated RFID tag and TPMS sensor of the present invention
- FIG. 3 B is an enlarged plan view of a portion of a printed circuit board of the integrated RFID tag and TPMS sensor shown in FIG. 3 A ;
- FIG. 3 C is an end view of a portion of the printed circuit board of the integrated RFID tag and TPMS sensor shown in FIG. 3 B ;
- FIG. 3 D is an enlarged plan view of a portion of an antenna of the integrated RFID tag and TPMS sensor shown in FIG. 3 A ;
- FIG. 3 E is an enlarged plan view of a portion of the integrated RFID tag and TPMS sensor shown in FIG. 3 A ;
- FIG. 3 F is an enlarged end view of a portion of the integrated RFID tag and TPMS sensor shown in FIG. 3 A ;
- FIG. 4 A is a plan view of a second exemplary embodiment of an integrated RFID tag and TPMS sensor of the present invention.
- FIG. 4 B is an enlarged plan view of a portion of a printed circuit board of the integrated RFID tag and TPMS sensor shown in FIG. 4 A ;
- FIG. 4 C is an end view of a portion of the printed circuit board of the integrated RFID tag and TPMS sensor shown in FIG. 4 B ;
- FIG. 4 D is an enlarged plan view of a portion of a printed circuit board and an antenna of the integrated RFID tag and TPMS sensor shown in FIG. 4 A ;
- FIG. 4 E is an enlarged plan view of a portion of the integrated RFID tag and TPMS sensor shown in FIG. 4 A ;
- FIG. 4 F is an enlarged end view of a portion of the integrated RFID tag and TPMS sensor shown in FIG. 4 A ;
- FIG. 5 A is a plan view of a third exemplary embodiment of an integrated RFID tag and TPMS sensor of the present invention.
- FIG. 5 B is an enlarged plan view of a portion of the printed circuit board of the integrated RFID tag and TPMS sensor shown in FIG. 5 A ;
- FIG. 5 C is an end view of a portion of the printed circuit board of the integrated RFID tag and TPMS sensor shown in FIG. 5 B ;
- FIG. 5 D is an enlarged plan view of another portion of the printed circuit board of the integrated RFID tag and TPMS sensor shown in FIG. 5 A ;
- FIG. 5 E is an enlarged plan view of a portion of a printed circuit board and an antenna of the integrated RFID tag and TPMS sensor shown in FIG. 5 A ;
- FIG. 5 F is an enlarged plan view of another portion of a printed circuit board and an antenna of the integrated RFID tag and TPMS sensor shown in FIG. 5 A ;
- FIG. 5 G is an enlarged plan view of a portion of the integrated RFID tag and TPMS sensor shown in FIG. 5 A ;
- FIG. 5 H is an enlarged end view of a portion of the integrated RFID tag and TPMS sensor shown in FIG. 5 A ;
- FIG. 6 A is a plan view of a fourth exemplary embodiment of an integrated RFID tag and TPMS sensor of the present invention.
- FIG. 6 B is an enlarged plan view of a portion of a printed circuit board of the integrated RFID tag and TPMS sensor shown in FIG. 6 A ;
- FIG. 6 C is an end view of a portion of the printed circuit board of the integrated RFID tag and TPMS sensor shown in FIG. 6 B ;
- FIG. 6 D is an enlarged plan view of a portion of the integrated RFID tag and TPMS sensor shown in FIG. 6 A ;
- FIG. 6 E is an enlarged end view of a portion of the integrated RFID tag and TPMS sensor shown in FIG. 6 A ;
- FIG. 7 A is a plan view of a fifth exemplary embodiment of an integrated RFID tag and TPMS sensor of the present invention.
- FIG. 7 B is an enlarged plan view of a portion of a printed circuit board of the integrated RFID tag and TPMS sensor shown in FIG. 7 A ;
- FIG. 7 C is an end view of a portion of the printed circuit board of the integrated RFID tag and TPMS sensor shown in FIG. 7 B ;
- FIG. 7 D is an enlarged plan view of a portion of a printed circuit board and an antenna of the integrated RFID tag and TPMS sensor shown in FIG. 7 A ;
- FIG. 7 E is an enlarged plan view of a portion of the integrated RFID tag and TPMS sensor shown in FIG. 7 A ;
- FIG. 7 F is an enlarged end view of a portion of the integrated RFID tag and TPMS sensor shown in FIG. 7 A ;
- FIG. 8 A is a plan view of a sixth exemplary embodiment of an integrated RFID tag and TPMS sensor of the present invention.
- FIG. 8 B is an enlarged plan view of a portion of a printed circuit board of the integrated RFID tag and TPMS sensor shown in FIG. 8 A ;
- FIG. 8 C is an end view of a portion of the printed circuit board of the integrated RFID tag and TPMS sensor shown in FIG. 8 B ;
- FIG. 8 D is an enlarged plan view of a portion of a printed circuit board and an antenna of the integrated RFID tag and TPMS sensor shown in FIG. 8 A ;
- FIG. 8 E is an enlarged plan view of a portion of the integrated RFID tag and TPMS sensor shown in FIG. 8 A ;
- FIG. 8 F is an enlarged end view of a portion of the integrated RFID tag and TPMS sensor shown in FIG. 8 A ;
- FIG. 9 A is a plan view of a seventh exemplary embodiment of an integrated RFID tag and TPMS sensor of the present invention.
- FIG. 9 B is an enlarged plan view of a portion of a printed circuit board of the integrated RFID tag and TPMS sensor shown in FIG. 9 A ;
- FIG. 9 C is an end view of a portion of the printed circuit board of the integrated RFID tag and TPMS sensor shown in FIG. 9 B ;
- FIG. 9 D is an enlarged plan view of a portion of a printed circuit board and an antenna of the integrated RFID tag and TPMS sensor shown in FIG. 9 A ;
- FIG. 9 E is an enlarged plan view of a portion of the integrated RFID tag and TPMS sensor shown in FIG. 9 A ;
- FIG. 9 F is an enlarged end view of a portion of the integrated RFID tag and TPMS sensor shown in FIG. 9 A ;
- FIG. 10 A is a plan view of an eighth exemplary embodiment of an integrated RFID tag and TPMS sensor of the present invention.
- FIG. 10 B is an enlarged plan view of a portion of a printed circuit board of the integrated RFID tag and TPMS sensor shown in FIG. 10 A ;
- FIG. 10 C is an enlarged plan view of another portion of a printed circuit board of the integrated RFID tag and TPMS sensor shown in FIG. 10 A ;
- FIG. 10 D is an enlarged plan view of a portion of a printed circuit board and an antenna of the integrated RFID tag and TPMS sensor shown in FIG. 10 A ;
- FIG. 10 E is an enlarged plan view of another portion of a printed circuit board and an antenna of the integrated RFID tag and TPMS sensor shown in FIG. 10 A ;
- FIG. 10 F is an enlarged plan view of a portion of the integrated RFID tag and TPMS sensor shown in FIG. 10 A ;
- FIG. 10 G is an enlarged end view of a portion of the integrated RFID tag and TPMS sensor shown in FIG. 10 A .
- FIGS. 1 and 3 A- 10 G Exemplary embodiments of an integrated RFID tag and TPMS sensor of the present invention are shown in FIGS. 1 and 3 A- 10 G , and are indicated at 10 A- 10 H, respectively.
- the integrated RFID tag and TPMS sensor is preferably employed in a tire 12 .
- the tire 12 includes a pair of bead areas 14 and a respective bead core 16 embedded in each bead area.
- a respective sidewall 18 extends radially outward from each bead area 14 to a ground-contacting tread 20 .
- the tire 12 is reinforced by a carcass 22 that toroidally extends from one of the bead areas 12 to the other one of the bead areas.
- the carcass 20 includes at least one ply 24 that preferably winds around each bead core 16 .
- a belt reinforcement package 26 preferably is disposed between the carcass 22 and the tread 20 .
- An innerliner 28 is formed on the inside surface of the carcass 22 .
- a tire cavity 30 is disposed inwardly of the innerliner 28 .
- the innerliner 28 cooperates with the wheel to render the tire cavity 30 airtight.
- the integrated RFID tag and TPMS sensor 10 A preferably is mounted on the innerliner 28 of the tire 12 and is disposed in the tire cavity 30 .
- all embodiments of the integrated RFID tag and TPMS sensor 10 A- 10 H may be employed in the tire 12 .
- the prior art integrated RFID tag and TPMS sensor 2 includes a printed circuit board 3 and a coil antenna 4 that is electronically attached to the printed circuit board.
- the coil antenna 4 is directly placed on the printed circuit board 3 and solder 5 is applied to bond the antenna to the printed circuit board.
- This structure may create issues, such as difficulty in placing the coil antenna 4 at a repeatable, exact location on the printed circuit board 3 , leading to undesirable variation in alignment and antenna length.
- There is also limited surface contact between the coil antenna 4 and the printed circuit board 3 for soldering 5 which may cause undesirable variation in the strength of the bond between the antenna and the printed circuit board and a decrease in bond durability.
- a second coil antenna 6 is mounted to the printed circuit board 3 with the first coil antenna 4 , each antenna is soldered to separate area on the printed circuit board, which may create a different wave form contact between the two antennas that impairs the performance of the antennas.
- the integrated RFID tag and TPMS sensor 10 A includes an RFID tag 32 , which in turn includes an integrated circuit 34 .
- the integrated circuit 34 is carried on a printed circuit board 36 and processes and stores data for the tire 12 .
- the integrated circuit 36 includes electronic memory capacity for storing identification (ID) information for each tire 12 , known as tire ID information.
- the tire ID information may include manufacturing information for the tire 12 , such as: the tire type; tire model; size information, such as rim size, width, and outer diameter; manufacturing location; manufacturing date; a treadcap code that includes or correlates to a compound identification; and a mold code that includes or correlates to a tread structure identification.
- the tire ID information may also include a service history or other information to identify specific features and parameters of each tire 12 , as well as mechanical characteristics of the tire.
- the integrated circuit 34 also modulates and demodulates a radio frequency signal for communication with an external reader (not shown) through an antenna 40 , which will be described in greater detail below.
- a TPMS sensor 38 preferably is mounted on the RFID tag 32 , and thus is in electronic communication with the integrated circuit 34 and the antenna 40 .
- the TPMS sensor 38 preferably includes a pressure sensor that measures the pressure in the tire cavity 30 , and may include a temperature sensor that measures the temperature in the tire cavity and/or another component of the tire 12 .
- the TPMS sensor 38 may correlate the pressure and temperature measurements.
- Other sensors may also be mounted on the RFID tag 32 , such as a stress sensor, a strain sensor, vibration sensor, accelerometer, and the like.
- the antenna 40 preferably includes two coil antenna wires 42 a and 42 b, which are each formed in a helical shape.
- the antenna 40 receives and transmits a signal to the external reader using a radio frequency, thus facilitating communication between the integrated RFID tag and TPMS sensor 10 A and the reader.
- the configuration of the RFID tag 32 , integrated circuit 34 , printed circuit board 36 , TPMS sensor 38 , and antenna 40 is more fully described in U.S. Patent Application Publication No. 2021/0016614, which is owned by the same Assignee as the present invention, The Goodyear Tire & Rubber Company, and is incorporated herein by reference in its entirety.
- Each antenna wire 42 a and 42 b includes a first end 44 a and 44 b, respectively, which is mounted to the printed circuit board 36 .
- a solder pad 46 preferably is formed on the printed circuit board 36 , and the first end 44 a of the antenna 42 a is mounted to the solder pad with solder 48 .
- the first end 44 a of the antenna 42 a is electrically connected to the integrated circuit 34 through conductive traces on the printed circuit board 36 that extend between the solder pad 46 and the integrated circuit.
- the first embodiment of the integrated RFID tag and TPMS sensor 10 A includes a mechanical interlock 50 between the first end 44 a of the antenna wire 42 a and the printed circuit board 36 .
- the mechanical interlock 50 includes features that secure the first end 44 a of the antenna wire 42 a to the printed circuit board 36 . More particularly, a straight slot 52 is formed in the printed circuit board 36 by milling or another forming technique. The slot 52 does not extend through the entire thickness of the printed circuit board 36 .
- a corresponding straight slot 54 is formed in the solder pad 46 , and the first end 44 a of the antenna wire 42 a is formed with a straight terminus 56 . The straight terminus 56 of the antenna wire 42 a seats in the aligned slots 52 and 54 . In this manner, the printed circuit board 36 receives and mechanically engages the terminus 56 of the antenna wire 42 a.
- the solder 48 preferably is deposited on the solder pad 46 to secure the connection of the antenna wire to the printed circuit board 36 .
- the second antenna wire 42 b is connected to the printed circuit board 36 in the same manner as the first antenna wire 42 a.
- the first embodiment of the integrated RFID tag and TPMS sensor 10 A thus provides a mechanical interlock 50 between the first end 44 a, 44 b of each respective antenna 42 a , 42 b and the printed circuit board 36 .
- the mechanical interlock 50 enables secure, convenient, and repeatable placement of each respective antenna 42 a, 42 b on the printed circuit board 36 .
- the mechanical interlock 50 also enables easy soldering on a flat surface, which increases the durability of the bond between the antenna wires 42 a, 42 b and the printed circuit board 36 .
- FIGS. 4 A- 4 F the structure of a second exemplary embodiment of the integrated RFID tag and TPMS sensor 10 B is shown.
- the second embodiment of the integrated RFID tag and TPMS sensor 10 B includes an RFID tag 32 , integrated circuit 34 , printed circuit board 36 , TPMS sensor 38 , and antenna 40 in a configuration that is similar to the description provided above for the first embodiment of the integrated RFID tag and TPMS sensor 10 A.
- the antenna 40 also includes a first antenna wire 42 a and a second antenna wire 42 b, each of which includes a first end 44 a and 44 b, respectively, also as described above.
- a solder pad 46 preferably is formed on the printed circuit board 36 , and the first end 44 a of the antenna 42 a is mounted to the solder pad with solder 48 .
- the first end 44 a of the antenna 42 a is electrically connected to the integrated circuit 34 through conductive traces on the printed circuit board 36 that extend between the solder pad 46 and the integrated circuit.
- the second embodiment of the integrated RFID tag and TPMS sensor 10 B includes a mechanical interlock 58 between the first end 44 a of the antenna wire 42 a and the printed circuit board 36 .
- the mechanical interlock 58 includes features that secure the first end 44 a of the antenna wire 42 a to the printed circuit board 36 . More particularly, a circular slot 60 is formed in the printed circuit board 36 by milling or another forming technique. The slot 60 does not extend through the entire thickness of the printed circuit board 36 .
- a corresponding circular slot 62 is formed in the solder pad 46 , and the first end 44 a of the antenna wire 42 a is formed with a circular terminus 56 .
- the circular terminus 56 is formed by bending one pitch 66 of the first end 44 a of the coiled antenna wire 42 a to an angle that is about ninety (90) degrees relative to the remainder of the coiled antenna pitches.
- the circular terminus 64 of the antenna wire 42 a seats in the aligned slots 60 and 62 . In this manner, the printed circuit board 36 receives and mechanically engages the terminus 64 of the antenna wire 42 a.
- the solder 48 preferably is deposited on the solder pad 46 to secure the connection of the antenna wire to the printed circuit board 36 .
- the second antenna wire 42 b is connected to the printed circuit board 36 in the same manner as the first antenna wire 42 a.
- the second embodiment of the integrated RFID tag and TPMS sensor 10 B thus provides a mechanical interlock 58 between the first end 44 a, 44 b of each respective antenna 42 a , 42 b and the printed circuit board 36 .
- the mechanical interlock 58 enables secure, convenient, and repeatable placement of each respective antenna 42 a, 42 b on the printed circuit board 36 .
- the mechanical interlock 58 also enables easy soldering on a flat surface, which increases the durability of the bond between the antenna wires 42 a, 42 b and the printed circuit board 36 .
- FIGS. 5 A- 5 H the structure of a third exemplary embodiment of the integrated RFID tag and TPMS sensor 10 C is shown.
- the third embodiment of the integrated RFID tag and TPMS sensor 10 C includes an RFID tag 32 , integrated circuit 34 , printed circuit board 36 , TPMS sensor 38 , and antenna 40 in a configuration that is similar to the description provided above for the first embodiment of the integrated RFID tag and TPMS sensor 10 A.
- the antenna 40 also includes a first antenna wire 42 a and a second antenna wire 42 b, each of which includes a first end 44 a and 44 b, respectively, also as described above.
- a solder pad 46 preferably is formed on the printed circuit board 36 , and the first end 44 a of the antenna 42 a is mounted to the solder pad with solder 48 .
- the first end 44 a of the antenna 42 a is electrically connected to the integrated circuit 34 through conductive traces on the printed circuit board 36 that extend between the solder pad 46 and the integrated circuit.
- the third embodiment of the integrated RFID tag and TPMS sensor 10 C includes a mechanical interlock 68 between the first end 44 a of the antenna wire 42 a and the printed circuit board 36 .
- the mechanical interlock 68 includes features that secure the first end 44 a of the antenna wire 42 a to the printed circuit board 36 .
- a straight slot 70 is formed in the printed circuit board 36 by milling or another forming technique. The slot 70 extends through the entire thickness of the printed circuit board 36 .
- the slot 70 is positioned so that a distance between a top edge 74 of the printed circuit board 36 and a top 76 of the slot is less than an inside diameter 78 of the coiled antenna wire 42 , creating an insert 86 .
- a straight slot 80 is formed in the solder pad 46 and aligns with the slot 70 in the printed circuit board 36 .
- a recess 82 is formed in the printed circuit board 36 near the straight slot 70 , and does not extend through the thickness of the printed circuit board.
- the first end 44 a of the antenna wire 42 a includes a terminus 84 .
- the first end 44 a of the antenna wire 42 a engages the insert 86 of the printed circuit board 36 , and the terminus 84 seats in the recess 82 .
- the printed circuit board 36 receives and mechanically engages the first end 44 a and the terminus 84 of the antenna wire 42 a.
- the solder 48 preferably is deposited on the solder pad 46 to secure the connection of the antenna wire to the printed circuit board 36 .
- the second antenna wire 42 b is connected to the printed circuit board 36 in the same manner as the first antenna wire 42 a.
- the third embodiment of the integrated RFID tag and TPMS sensor 10 C thus provides a mechanical interlock 68 between the first end 44 a, 44 b of each respective antenna 42 a , 42 b and the printed circuit board 36 .
- the mechanical interlock 68 enables secure, convenient, and repeatable placement of each respective antenna 42 a, 42 b on the printed circuit board 36 .
- the interlock 68 also enables the length of each antenna wire 42 a, 42 b to be controlled, creating a uniform wave form contact between the first and second antenna wires.
- the mechanical interlock 68 further enables easy soldering, which increases the durability of the bond between the antenna wires 42 a, 42 b and the printed circuit board 36 .
- FIGS. 6 A- 6 E the structure of a fourth exemplary embodiment of the integrated RFID tag and TPMS sensor 10 D is shown.
- the fourth embodiment of the integrated RFID tag and TPMS sensor 10 D includes an RFID tag 32 , integrated circuit 34 , printed circuit board 36 , TPMS sensor 38 , and antenna 40 in a configuration that is similar to the description provided above for the first embodiment of the integrated RFID tag and TPMS sensor 10 A.
- the antenna 40 also includes a first antenna wire 42 a and a second antenna wire 42 b, each of which includes a first end 44 a and 44 b, respectively, also as described above.
- a solder pad 46 preferably is formed on the printed circuit board 36 , and the first end 44 a of the antenna 42 a is mounted to the solder pad with solder 48 .
- the first end 44 a of the antenna 42 a is electrically connected to the integrated circuit 34 through conductive traces on the printed circuit board 36 that extend between the solder pad 46 and the integrated circuit.
- the fourth embodiment of the integrated RFID tag and TPMS sensor 10 D includes a mechanical interlock 88 between the first end 44 a of the antenna wire 42 a and the printed circuit board 36 .
- the mechanical interlock 88 includes features that secure the first end 44 a of the antenna wire 42 a to the printed circuit board 36 .
- a first slot 90 is formed in the printed circuit board 36 by milling or another forming technique.
- the first slot 90 extends in a straight manner across the printed circuit board 36 , with a semi-circular cross section through the entire thickness of the printed circuit board 36 .
- a second slot 92 is formed in the printed circuit board 36 by milling or another forming technique. The second slot 92 extends in a straight manner across the printed circuit board 36 parallel to the first slot 90 , with a semi-circular cross section through the entire thickness of the printed circuit board 36 .
- the slots 90 and 92 are of an equal length, and are positioned so that a distance 94 between a bottom edge 96 of the first slot and a top edge 98 of the second slot is less than an inside diameter 100 of the coiled antenna wire 42 , creating an insert 102 .
- a first slot 104 is formed in the solder pad 46 in alignment with the first slot 90 in the printed circuit board 36
- a second slot 106 is formed in the solder pad in alignment with the second slot 92 in the printed circuit board.
- the first end 44 a of the antenna wire 42 a engages the insert 102 of the printed circuit board 36 .
- the printed circuit board 36 receives and mechanically engages the first end 44 a of the antenna wire 42 a.
- the solder 48 preferably is deposited on the solder pad 46 to secure the connection of the antenna wire to the printed circuit board 36 .
- the second antenna wire 42 b is connected to the printed circuit board 36 in the same manner as the first antenna wire 42 a.
- the fourth embodiment of the integrated RFID tag and TPMS sensor 10 D thus provides a mechanical interlock 88 between the first end 44 a, 44 b of each respective antenna 42 a , 42 b and the printed circuit board 36 .
- the mechanical interlock 88 enables secure, convenient, and repeatable placement of each respective antenna 42 a, 42 b on the printed circuit board 36 .
- the interlock 88 also enables the length of each antenna wire 42 a, 42 b to be controlled, creating a uniform wave form contact between the first and second antenna wires.
- the mechanical interlock 88 further enables easy soldering, which increases the durability of the bond between the antenna wires 42 a, 42 b and the printed circuit board 36 .
- FIGS. 7 A- 7 F the structure of a fifth exemplary embodiment of the integrated RFID tag and TPMS sensor 10 E is shown.
- the fifth embodiment of the integrated RFID tag and TPMS sensor 10 E includes an RFID tag 32 , integrated circuit 34 , printed circuit board 36 , TPMS sensor 38 , and antenna 40 in a configuration that is similar to the description provided above for the first embodiment of the integrated RFID tag and TPMS sensor 10 A.
- the antenna 40 also includes a first antenna wire 42 a and a second antenna wire 42 b, each of which includes a first end 44 a and 44 b, respectively, also as described above.
- a solder pad 46 preferably is formed on the printed circuit board 36 , and the first end 44 a of the antenna 42 a is mounted to the solder pad with solder 48 .
- the first end 44 a of the antenna 42 a is electrically connected to the integrated circuit 34 through conductive traces on the printed circuit board 36 that extend between the solder pad 46 and the integrated circuit.
- the fifth embodiment of the integrated RFID tag and TPMS sensor 10 E includes a mechanical interlock 108 between the first end 44 a of the antenna wire 42 a and the printed circuit board 36 .
- the mechanical interlock 108 includes features that secure the first end 44 a of the antenna wire 42 a to the printed circuit board 36 .
- a first slot 110 is formed in the printed circuit board 36 by milling or another forming technique.
- the first slot 110 extends in a straight manner across the printed circuit board 36 , with a semi-circular cross section through the entire thickness of the printed circuit board 36 .
- a second slot 112 is formed in the printed circuit board 36 by milling or another forming technique.
- the second slot 112 extends in a straight manner across the printed circuit board 36 parallel to the first slot 110 , with a semi-circular cross section through the entire thickness of the printed circuit board 36 .
- the second slot 112 is formed with a length that is greater than a length of the first slot 110 .
- the slots 110 and 112 are positioned so that a distance 114 between a bottom edge 116 of the first slot and a top edge 118 of the second slot is less than an inside diameter 120 of the coiled antenna wire 42 , creating an insert 122 .
- a first slot 124 is formed in the solder pad 46 in alignment with the first slot 110 in the printed circuit board 36
- a second slot 126 is formed in the solder pad in alignment with the second slot 112 in the printed circuit board.
- a recess 128 is formed in the printed circuit board 36 near the first slot 110 , and does not extend through the thickness of the printed circuit board.
- the first end 44 a of the antenna wire 42 a includes a terminus 130 .
- the first end 44 a of the antenna wire 42 a engages the insert 122 of the printed circuit board 36 , and the terminus 130 seats in the recess 128 . In this manner, the printed circuit board 36 receives and mechanically engages the first end 44 a and the terminus 130 of the antenna wire 42 a.
- the solder 48 preferably is deposited on the solder pad 46 to secure the connection of the antenna wire to the printed circuit board 36 .
- the second antenna wire 42 b is connected to the printed circuit board 36 in the same manner as the first antenna wire 42 a.
- the fifth embodiment of the integrated RFID tag and TPMS sensor 10 E thus provides a mechanical interlock 108 between the first end 44 a, 44 b of each respective antenna 42 a , 42 b and the printed circuit board 36 .
- the mechanical interlock 108 enables secure, convenient, and repeatable placement of each respective antenna 42 a, 42 b on the printed circuit board 36 .
- the interlock 108 also enables the length of each antenna wire 42 a, 42 b to be controlled, creating a uniform wave form contact between the first and second antenna wires.
- the mechanical interlock 108 further enables easy soldering, which increases the durability of the bond between the antenna wires 42 a, 42 b and the printed circuit board 36 .
- FIGS. 8 A- 8 F the structure of a sixth exemplary embodiment of the integrated RFID tag and TPMS sensor 10 F is shown.
- the sixth embodiment of the integrated RFID tag and TPMS sensor 10 F includes an RFID tag 32 , integrated circuit 34 , printed circuit board 36 , TPMS sensor 38 , and antenna 40 in a configuration that is similar to the description provided above for the first embodiment of the integrated RFID tag and TPMS sensor 10 A.
- the antenna 40 also includes a first antenna wire 42 a and a second antenna wire 42 b, each of which includes a first end 44 a and 44 b, respectively, also as described above.
- a solder pad 46 preferably is formed on the printed circuit board 36 , and the first end 44 a of the antenna 42 a is mounted to the solder pad with solder 48 .
- the first end 44 a of the antenna 42 a is electrically connected to the integrated circuit 34 through conductive traces on the printed circuit board 36 that extend between the solder pad 46 and the integrated circuit.
- the sixth embodiment of the integrated RFID tag and TPMS sensor 10 F includes a mechanical interlock 132 between the first end 44 a of the antenna wire 42 a and the printed circuit board 36 .
- the mechanical interlock 132 includes features that secure the first end 44 a of the antenna wire 42 a to the printed circuit board 36 .
- a first slot 134 is formed in the printed circuit board 36 by milling or another forming technique.
- the first slot 134 extends in a straight manner across the printed circuit board 36 , with a straight cross section through the entire thickness of the printed circuit board 36 .
- a second slot 136 is formed in the printed circuit board 36 by milling or another forming technique.
- the second slot 136 extends in a straight manner across the printed circuit board 36 parallel to the first slot 134 , with a straight cross section through the entire thickness of the printed circuit board 36 .
- the second slot 136 is formed with a length that is greater than a length of the first slot 134 .
- the slots 134 and 136 are positioned so that a distance 138 between a bottom edge 140 of the first slot and a top edge 142 of the second slot is less than an inside diameter 144 of the coiled antenna wire 42 , creating an insert 146 .
- a first slot 148 is formed in the solder pad 46 in alignment with the first slot 134 in the printed circuit board 36
- a second slot 150 is formed in the solder pad in alignment with the second slot 136 in the printed circuit board.
- a recess 152 is formed in the printed circuit board 36 near the first slot 134 , and does not extend through the thickness of the printed circuit board.
- the first end 44 a of the antenna wire 42 a includes a terminus 154 .
- the first end 44 a of the antenna wire 42 a engages the insert 146 of the printed circuit board 36 , and the terminus 154 seats in the recess 152 . In this manner, the printed circuit board 36 receives and mechanically engages the first end 44 a and the terminus 154 of the antenna wire 42 a.
- the solder 48 preferably is deposited on the solder pad 46 to secure the connection of the antenna wire to the printed circuit board 36 .
- the second antenna wire 42 b is connected to the printed circuit board 36 in the same manner as the first antenna wire 42 a.
- the sixth embodiment of the integrated RFID tag and TPMS sensor 10 F thus provides a mechanical interlock 132 between the first end 44 a, 44 b of each respective antenna 42 a , 42 b and the printed circuit board 36 .
- the mechanical interlock 132 enables secure, convenient, and repeatable placement of each respective antenna 42 a, 42 b on the printed circuit board 36 .
- the interlock 132 also enables the length of each antenna wire 42 a, 42 b to be controlled, creating a uniform wave form contact between the first and second antenna wires.
- the mechanical interlock 132 further enables easy soldering, which increases the durability of the bond between the antenna wires 42 a, 42 b and the printed circuit board 36 .
- FIGS. 9 A- 9 F the structure of a seventh exemplary embodiment of the integrated RFID tag and TPMS sensor 10 G is shown.
- the seventh embodiment of the integrated RFID tag and TPMS sensor 10 G includes an RFID tag 32 , integrated circuit 34 , printed circuit board 36 , TPMS sensor 38 , and antenna 40 in a configuration that is similar to the description provided above for the first embodiment of the integrated RFID tag and TPMS sensor 10 A.
- the antenna 40 also includes a first antenna wire 42 a and a second antenna wire 42 b, each of which includes a first end 44 a and 44 b, respectively, also as described above.
- a solder pad 46 preferably is formed on the printed circuit board 36 , and the first end 44 a of the antenna 42 a is mounted to the solder pad with solder 48 .
- the first end 44 a of the antenna 42 a is electrically connected to the integrated circuit 34 through conductive traces on the printed circuit board 36 that extend between the solder pad 46 and the integrated circuit.
- the seventh embodiment of the integrated RFID tag and TPMS sensor 10 G includes a mechanical interlock 156 between the first end 44 a of the antenna wire 42 a and the printed circuit board 36 .
- the mechanical interlock 156 includes features that secure the first end 44 a of the antenna wire 42 a to the printed circuit board 36 .
- a first slot 158 is formed in the printed circuit board 36 by milling or another forming technique.
- the first slot 134 extends in a straight manner into the printed circuit board 36 , with a straight cross section through the entire thickness of the printed circuit board 36 .
- a first opening 162 is formed in the printed circuit board 36 in parallel alignment with the first slot 134 , and extends through the printed circuit board.
- a distance 174 between the first slot 158 and the first opening 162 matches a pitch 176 of the coiled antenna wire 42 a.
- a second slot 164 is formed in the printed circuit board 36 by milling or another forming technique.
- the second slot 164 extends into the printed circuit board 36 parallel to the first slot 158 for a distance that is less than the first slot, with a straight cross section through the entire thickness of the printed circuit board.
- the second slot 164 is formed with a length that is less than or shorter than a length of the first slot 158 .
- a second opening 166 is formed in the printed circuit board 36 in parallel alignment with the second slot 164 , and extends through the printed circuit board.
- a third opening 168 is formed in the printed circuit board 36 in parallel alignment with the second slot 164 and the second opening 166 , and extends through the printed circuit board.
- a distance 178 between the second slot 164 and the second opening 166 matches the pitch 176 of the coiled antenna wire 42 a, and a distance 180 between the second opening 166 and the third opening 168 also matches the pitch of the coiled antenna wire.
- the first slot 158 and the first opening 162 are spaced apart from the second slot 164 , the second opening 166 , and the third opening 168 , creating a distance 170 that is slightly less than an inside diameter 172 of the coiled antenna wire 42 .
- a slot 182 is formed in the solder pad 46 in alignment with the first slot 158 in the printed circuit board 36
- a first opening 184 is formed in the solder pad in alignment with the first opening 162
- a second opening 186 is formed in the solder pad in alignment with the second opening 166
- a third opening 188 is formed in the solder pad in alignment with the third opening 168 .
- a recess 190 is formed in the printed circuit board 36 parallel to and near the first opening 162 , and does not extend through the thickness of the printed circuit board.
- a distance 192 between the first opening 162 and the recess 190 matches the pitch 176 of the coiled antenna wire 42 a.
- the first end 44 a of the antenna wire 42 a includes a terminus 194 .
- This structure enables the first end 44 a of the antenna wire 42 a to wind through the first slot 158 , the second slot 164 , the first opening 162 , the second opening 166 , and the third opening 168 , with the terminus 194 seating in the recess 190 .
- the printed circuit board 36 receives and mechanically engages the first end 44 a and the terminus 194 of the antenna wire 42 a.
- the solder 48 preferably is deposited on the solder pad 46 to secure the connection of the antenna wire to the printed circuit board 36 .
- the second antenna wire 42 b is connected to the printed circuit board 36 in the same manner as the first antenna wire 42 a.
- the seventh embodiment of the integrated RFID tag and TPMS sensor 10 G thus provides a mechanical interlock 156 between the first end 44 a, 44 b of each respective antenna 42 a , 42 b and the printed circuit board 36 .
- the mechanical interlock 156 enables secure, convenient, and repeatable placement of each respective antenna 42 a, 42 b on the printed circuit board 36 .
- the interlock 156 also enables the length of each antenna wire 42 a, 42 b to be controlled, creating a uniform wave form contact between the first and second antenna wires.
- the mechanical interlock 156 further enables easy soldering, which increases the durability of the bond between the antenna wires 42 a, 42 b and the printed circuit board 36 .
- FIGS. 10 A- 10 G the structure of an eighth exemplary embodiment of the integrated RFID tag and TPMS sensor 10 H is shown.
- the eighth embodiment of the integrated RFID tag and TPMS sensor 10 H includes an RFID tag 32 , integrated circuit 34 , printed circuit board 36 , TPMS sensor 38 , and antenna 40 in a configuration that is similar to the description provided above for the first embodiment of the integrated RFID tag and TPMS sensor 10 A.
- the antenna 40 also includes a first antenna wire 42 a and a second antenna wire 42 b, each of which includes a first end 44 a and 44 b, respectively, also as described above.
- a solder pad 46 preferably is formed on the printed circuit board 36 , and the first end 44 a of the antenna 42 a is mounted to the solder pad with solder 48 .
- the first end 44 a of the antenna 42 a is electrically connected to the integrated circuit 34 through conductive traces on the printed circuit board 36 that extend between the solder pad 46 and the integrated circuit.
- the eighth embodiment of the integrated RFID tag and TPMS sensor 10 H includes a mechanical interlock 196 between the first end 44 a of the antenna wire 42 a and the printed circuit board 36 .
- the mechanical interlock 196 includes features that secure the first end 44 a of the antenna wire 42 a to the printed circuit board 36 . More particularly, a first opening 198 is formed in the printed circuit board 36 by milling or another forming technique, and extends through the printed circuit board. A second opening 200 is formed in the printed circuit board 36 in parallel alignment with the first opening 198 , and extends through the printed circuit board. A distance 206 between the first opening 198 and the second opening 200 matches a pitch 208 of the coiled antenna wire 42 a.
- the first opening 198 and the second opening 200 are spaced apart from a top edge 202 of the printed circuit board 36 , creating a distance 204 that is slightly less than an inside diameter 210 of the coiled antenna wire 42 .
- a first opening 212 is formed in the solder pad 46 in alignment with the first opening 198 in the printed circuit board 36
- a second opening 214 is formed in the solder pad in alignment with the second opening 214 .
- a recess 216 is formed in the printed circuit board 36 parallel to and near the second opening 200 , and does not extend through the thickness of the printed circuit board.
- a distance 218 between the second opening 200 and the recess 216 matches the pitch 208 of the coiled antenna wire 42 a.
- the first end 44 a of the antenna wire 42 a includes a terminus 220 .
- This structure enables the first end 44 a of the antenna wire 42 a to wind over the top edge 202 of the printed circuit board 36 , through the first opening 198 , and through the second opening 200 , with the terminus 220 seating in the recess 216 .
- the printed circuit board 36 receives and mechanically engages the first end 44 a and the terminus 220 of the antenna wire 42 a.
- the solder 48 preferably is deposited on the solder pad 46 to secure the connection of the antenna wire to the printed circuit board 36 .
- the second antenna wire 42 b is connected to the printed circuit board 36 in the same manner as the first antenna wire 42 a.
- the eighth embodiment of the integrated RFID tag and TPMS sensor 10 H thus provides a mechanical interlock 196 between the first end 44 a, 44 b of each respective antenna 42 a , 42 b and the printed circuit board 36 .
- the mechanical interlock 196 enables secure, convenient, and repeatable placement of each respective antenna 42 a, 42 b on the printed circuit board 36 .
- the interlock 196 also enables the length of each antenna wire 42 a, 42 b to be controlled, creating a uniform wave form contact between the first and second antenna wires.
- the mechanical interlock 196 further enables easy soldering, which increases the durability of the bond between the antenna wires 42 a, 42 b and the printed circuit board 36 .
- the integrated RFID tag and TPMS sensor 10 A- 10 H of the present invention employs a structure that includes an antenna connection to a printed circuit board 36 which provides consistent placement and alignment of the antenna 40 for optimum performance.
- the printed circuit board 36 includes features that guide the antenna coil 44 a, 44 b for optimum placement, thereby simplifying repeatable antenna placement.
- the features preferably are formed in the printed circuit board 36 during manufacture of the board, desirably eliminating the need for special forming tools or processes.
- the mechanical interlock of the integrated RFID tag and TPMS sensor 10 A- 10 H of the present invention includes features that ensure consistent and repeatable installation of each respective antenna 42 a, 42 b on the printed circuit board 36 , which in turn ensures performance of the antenna.
- the mechanical interlock features of the integrated RFID tag and TPMS sensor 10 A- 10 H also enable the length of each antenna wire 42 a, 42 b to be controlled, creating a uniform wave form contact between the first and second antenna wires.
- the mechanical interlock features further enable easy soldering, which increases the durability of the bond between the antenna wires 42 a, 42 b and the printed circuit board 36 .
- the present invention also includes a method of forming an integrated RFID tag and TPMS sensor 10 A- 10 H.
- the method includes steps in accordance with the description that is presented above and shown in FIGS. 1 and 3 A- 10 G . It is to be understood that the structure of the above-described the integrated RFID tag and TPMS sensor 10 A- 10 H may be altered or rearranged, or components known to those skilled in the art omitted or added, without affecting the overall concept or operation of the invention.
- the integrated RFID tag and TPMS sensor 10 A- 10 H may be formed as an integrated unit as described above, or may be formed with a separable RFID tag and TPMS sensor.
Landscapes
- Engineering & Computer Science (AREA)
- Microelectronics & Electronic Packaging (AREA)
- Physics & Mathematics (AREA)
- General Physics & Mathematics (AREA)
- Computer Hardware Design (AREA)
- Theoretical Computer Science (AREA)
- Computer Networks & Wireless Communication (AREA)
- Mechanical Engineering (AREA)
- Arrangements For Transmission Of Measured Signals (AREA)
Abstract
An integrated radio frequency identification tag and tire pressure monitoring system sensor includes a radio frequency identification tag. The radio frequency identification tag includes an integrated circuit, and a printed circuit board carries the integrated circuit. A tire pressure monitoring system sensor is mounted on the radio frequency identification tag. An antenna includes at least one coil antenna wire. The antenna wire is formed in a helical shape and is electrically connected to the integrated circuit. A first end of the antenna wire is mounted to the printed circuit board. A mechanical interlock between the first end of the antenna wire and the printed circuit board includes features that secure the first end of the antenna wire to the printed circuit board.
Description
- The invention relates to tires and components for tires. More particularly, the invention relates to components for tire identification and the monitoring of tire pressure. Specifically, the invention is directed to an integrated radio frequency identification tag and tire pressure monitoring system sensor that includes an antenna connection to a printed circuit board which provides secure and consistent placement and alignment of the antenna for optimum performance.
- Pneumatic tires have been widely employed. Such tires include a pair of beads that are mounted on a wheel or rim. Each one of pair of sidewalls extends from a respective bead to a ground-engaging tread. A carcass, which is made of one or more plies, toroidally extends between the beads to reinforce the sidewalls and the tread. An innerliner is formed on the inside surface of the carcass. The wheel cooperates with the innerliner to define an interior or tire cavity that is inflated with air.
- It has been desirable to provide such pneumatic tires with an electronic device that enables information about the tire to be transmitted to an external device for tracking of certain parameters and identification of the tire during its lifetime. One such electronic device is a radio frequency identification (RFID) device, sometimes referred to as an RFID tag.
- Most RFID tags include an integrated circuit for storing and processing information and an antenna for receiving and transmitting a signal to an external reader using a radio frequency. The antenna is electronically connected to the integrated circuit and typically is carried on a substrate with the integrated circuit, such as a circuit board.
- In the prior art, RFID tags were attached to the exterior of a sidewall of a pneumatic tire. The exterior of a tire sidewall provides a convenient location that enables strong transmission of the signal from the RFID tag to an RFID reader, which is separate from the tire. However, the RFID tag may incur potential damage when it is attached to the exterior of a tire sidewall. To reduce such potential damage, it has become desirable to attach the RFID tag to an interior structure of the tire.
- In addition, it is desirable to monitor certain parameters, such as the pressure in the tire cavity, the temperature in the tire cavity and/or the temperature in the tread or another tire component, and to transmit data for those parameters to a device that can record and/or display the data. To this end, tire pressure monitoring systems (TPMS) have been developed. Many TPMS configurations employ a pressure and/or temperature sensor that is mounted to the tire, which is referred to as a TPMS sensor. Due to power and communication requirements of TPMS sensors, TPMS units have been separate from RFID tags. However, mounting of separate TPMS sensors and RFID tags in a tire is undesirable.
- To provide more efficient mounting in a tire, an integrated RFID tag and TPMS sensor has been developed. The integrated RFID tag and TPMS sensor includes a printed circuit board and a coil antenna that is electronically attached to the printed circuit board. In the prior art, the antenna coil has been directly placed on the printed circuit board and solder has been applied to bond the antenna to the surface of the printed circuit board. However, the efficiency and performance of the integrated RFID tag and TPMS sensor may be significantly affected by issues encountered with the prior art attachment technique.
- For example, it may be difficult to place the coil antenna at a repeatable, exact location on the printed circuit board, creating difficulty in installation and leading to undesirable variation in alignment and antenna length. Such variation in turn may interfere with the performance of the integrated RFID tag and TPMS sensor. In addition, there is limited surface contact between the coil antenna and the surface of the printed circuit board for soldering, which may cause undesirable variation in the strength of the bond between the antenna and the printed circuit board and may decrease the durability of the bond. Further, when two coil antennas are mounted to the printed circuit board, the antennas are typically soldered to separate areas on the surface of the printed circuit board. The separate areas may create a different wave form contact between the two antennas, which may impair the efficiency and performance of the antennas.
- As a result, there is a need in the art for an integrated radio frequency identification tag and tire pressure monitoring system sensor that includes an antenna connection to a printed circuit board which provides consistent placement and alignment of the antenna for optimum performance.
- According to an aspect of an exemplary embodiment of the invention, an integrated radio frequency identification tag and tire pressure monitoring system sensor includes a radio frequency identification tag. The radio frequency identification tag includes an integrated circuit, and a printed circuit board carries the integrated circuit. A tire pressure monitoring system sensor is mounted on the radio frequency identification tag. An antenna includes at least one coil antenna wire, in which the at least one antenna wire is formed in a helical shape and is electrically connected to the integrated circuit. The at least one antenna wire includes a first end that is mounted to the printed circuit board. A mechanical interlock between the first end of the antenna wire and the printed circuit board includes features that secure the first end of the antenna wire to the printed circuit board.
- “Axial” and “axially” mean lines or directions that are parallel to the axis of rotation of the tire.
- “Axially inward” and “axially inwardly” refer to an axial direction that is toward the axial center of the tire.
- “Axially outward” and “axially outwardly” refer to an axial direction that is away from the axial center of the tire.
- “Circumferential” means lines or directions extending along the perimeter of the surface of the annular tread perpendicular to the axial direction.
- “Inboard” refers to the axial inner surface of the tire as mounted on the vehicle.
- “Innerliner” means the layer or layers of elastomer or other material that form the inside surface of a tubeless tire and that contain the inflating fluid within the tire.
- “Outboard” refers to the axial outer surface of the tire as mounted on a vehicle.
- “Radial” and “radially” mean lines or directions that are perpendicular to the axis of rotation of the tire.
- “Radially inward” and “radially inwardly” refer to a radial direction that is toward the central axis of rotation of the tire.
- “Radially outward” and “radially outwardly” refer to a radial direction that is away from the central axis of rotation of the tire.
- “RFID” means radio frequency identification.
- “TPMS” means a tire pressure monitoring system.
- The invention will be described by way of example and with reference to the accompanying drawings, in which:
-
FIG. 1 is a cross-sectional view of an exemplary pneumatic tire with a first exemplary embodiment of an integrated RFID tag and TPMS sensor of the present invention; -
FIG. 2A is a plan view of an integrated RFID tag and TPMS sensor of the prior art; -
FIG. 2B is an enlarged plan view of a portion of the integrated RFID tag and TPMS sensor shown inFIG. 2A ; -
FIG. 2C is an end view of the integrated RFID tag and TPMS sensor shown inFIG. 2A ; -
FIG. 2D is an enlarged end view of a portion of the integrated RFID tag and TPMS sensor shown inFIG. 2C ; -
FIG. 3A is a plan view of a first exemplary embodiment of an integrated RFID tag and TPMS sensor of the present invention; -
FIG. 3B is an enlarged plan view of a portion of a printed circuit board of the integrated RFID tag and TPMS sensor shown inFIG. 3A ; -
FIG. 3C is an end view of a portion of the printed circuit board of the integrated RFID tag and TPMS sensor shown inFIG. 3B ; -
FIG. 3D is an enlarged plan view of a portion of an antenna of the integrated RFID tag and TPMS sensor shown inFIG. 3A ; -
FIG. 3E is an enlarged plan view of a portion of the integrated RFID tag and TPMS sensor shown inFIG. 3A ; -
FIG. 3F is an enlarged end view of a portion of the integrated RFID tag and TPMS sensor shown inFIG. 3A ; -
FIG. 4A is a plan view of a second exemplary embodiment of an integrated RFID tag and TPMS sensor of the present invention; -
FIG. 4B is an enlarged plan view of a portion of a printed circuit board of the integrated RFID tag and TPMS sensor shown inFIG. 4A ; -
FIG. 4C is an end view of a portion of the printed circuit board of the integrated RFID tag and TPMS sensor shown inFIG. 4B ; -
FIG. 4D is an enlarged plan view of a portion of a printed circuit board and an antenna of the integrated RFID tag and TPMS sensor shown inFIG. 4A ; -
FIG. 4E is an enlarged plan view of a portion of the integrated RFID tag and TPMS sensor shown inFIG. 4A ; -
FIG. 4F is an enlarged end view of a portion of the integrated RFID tag and TPMS sensor shown inFIG. 4A ; -
FIG. 5A is a plan view of a third exemplary embodiment of an integrated RFID tag and TPMS sensor of the present invention; -
FIG. 5B is an enlarged plan view of a portion of the printed circuit board of the integrated RFID tag and TPMS sensor shown inFIG. 5A ; -
FIG. 5C is an end view of a portion of the printed circuit board of the integrated RFID tag and TPMS sensor shown inFIG. 5B ; -
FIG. 5D is an enlarged plan view of another portion of the printed circuit board of the integrated RFID tag and TPMS sensor shown inFIG. 5A ; -
FIG. 5E is an enlarged plan view of a portion of a printed circuit board and an antenna of the integrated RFID tag and TPMS sensor shown inFIG. 5A ; -
FIG. 5F is an enlarged plan view of another portion of a printed circuit board and an antenna of the integrated RFID tag and TPMS sensor shown inFIG. 5A ; -
FIG. 5G is an enlarged plan view of a portion of the integrated RFID tag and TPMS sensor shown inFIG. 5A ; -
FIG. 5H is an enlarged end view of a portion of the integrated RFID tag and TPMS sensor shown inFIG. 5A ; -
FIG. 6A is a plan view of a fourth exemplary embodiment of an integrated RFID tag and TPMS sensor of the present invention; -
FIG. 6B is an enlarged plan view of a portion of a printed circuit board of the integrated RFID tag and TPMS sensor shown inFIG. 6A ; -
FIG. 6C is an end view of a portion of the printed circuit board of the integrated RFID tag and TPMS sensor shown inFIG. 6B ; -
FIG. 6D is an enlarged plan view of a portion of the integrated RFID tag and TPMS sensor shown inFIG. 6A ; -
FIG. 6E is an enlarged end view of a portion of the integrated RFID tag and TPMS sensor shown inFIG. 6A ; -
FIG. 7A is a plan view of a fifth exemplary embodiment of an integrated RFID tag and TPMS sensor of the present invention; -
FIG. 7B is an enlarged plan view of a portion of a printed circuit board of the integrated RFID tag and TPMS sensor shown inFIG. 7A ; -
FIG. 7C is an end view of a portion of the printed circuit board of the integrated RFID tag and TPMS sensor shown inFIG. 7B ; -
FIG. 7D is an enlarged plan view of a portion of a printed circuit board and an antenna of the integrated RFID tag and TPMS sensor shown inFIG. 7A ; -
FIG. 7E is an enlarged plan view of a portion of the integrated RFID tag and TPMS sensor shown inFIG. 7A ; -
FIG. 7F is an enlarged end view of a portion of the integrated RFID tag and TPMS sensor shown inFIG. 7A ; -
FIG. 8A is a plan view of a sixth exemplary embodiment of an integrated RFID tag and TPMS sensor of the present invention; -
FIG. 8B is an enlarged plan view of a portion of a printed circuit board of the integrated RFID tag and TPMS sensor shown inFIG. 8A ; -
FIG. 8C is an end view of a portion of the printed circuit board of the integrated RFID tag and TPMS sensor shown inFIG. 8B ; -
FIG. 8D is an enlarged plan view of a portion of a printed circuit board and an antenna of the integrated RFID tag and TPMS sensor shown inFIG. 8A ; -
FIG. 8E is an enlarged plan view of a portion of the integrated RFID tag and TPMS sensor shown inFIG. 8A ; -
FIG. 8F is an enlarged end view of a portion of the integrated RFID tag and TPMS sensor shown inFIG. 8A ; -
FIG. 9A is a plan view of a seventh exemplary embodiment of an integrated RFID tag and TPMS sensor of the present invention; -
FIG. 9B is an enlarged plan view of a portion of a printed circuit board of the integrated RFID tag and TPMS sensor shown inFIG. 9A ; -
FIG. 9C is an end view of a portion of the printed circuit board of the integrated RFID tag and TPMS sensor shown inFIG. 9B ; -
FIG. 9D is an enlarged plan view of a portion of a printed circuit board and an antenna of the integrated RFID tag and TPMS sensor shown inFIG. 9A ; -
FIG. 9E is an enlarged plan view of a portion of the integrated RFID tag and TPMS sensor shown inFIG. 9A ; -
FIG. 9F is an enlarged end view of a portion of the integrated RFID tag and TPMS sensor shown inFIG. 9A ; -
FIG. 10A is a plan view of an eighth exemplary embodiment of an integrated RFID tag and TPMS sensor of the present invention; -
FIG. 10B is an enlarged plan view of a portion of a printed circuit board of the integrated RFID tag and TPMS sensor shown inFIG. 10A ; -
FIG. 10C is an enlarged plan view of another portion of a printed circuit board of the integrated RFID tag and TPMS sensor shown inFIG. 10A ; -
FIG. 10D is an enlarged plan view of a portion of a printed circuit board and an antenna of the integrated RFID tag and TPMS sensor shown inFIG. 10A ; -
FIG. 10E is an enlarged plan view of another portion of a printed circuit board and an antenna of the integrated RFID tag and TPMS sensor shown inFIG. 10A ; -
FIG. 10F is an enlarged plan view of a portion of the integrated RFID tag and TPMS sensor shown inFIG. 10A ; and -
FIG. 10G is an enlarged end view of a portion of the integrated RFID tag and TPMS sensor shown inFIG. 10A . - Similar numerals refer to similar parts throughout the drawings.
- Exemplary embodiments of an integrated RFID tag and TPMS sensor of the present invention are shown in
FIGS. 1 and 3A-10G , and are indicated at 10A-10H, respectively. The integrated RFID tag and TPMS sensor is preferably employed in atire 12. - For example, referring to
FIG. 1 , a first exemplary embodiment of the integrated RFID tag and TPMS sensor is indicated at 10A. Thetire 12 includes a pair ofbead areas 14 and arespective bead core 16 embedded in each bead area. Arespective sidewall 18 extends radially outward from eachbead area 14 to a ground-contactingtread 20. Thetire 12 is reinforced by acarcass 22 that toroidally extends from one of thebead areas 12 to the other one of the bead areas. Thecarcass 20 includes at least oneply 24 that preferably winds around eachbead core 16. Abelt reinforcement package 26 preferably is disposed between thecarcass 22 and thetread 20. Aninnerliner 28 is formed on the inside surface of thecarcass 22. Atire cavity 30 is disposed inwardly of theinnerliner 28. - When the
tire 12 is mounted on a wheel (not shown) of a vehicle, as known in the art, theinnerliner 28 cooperates with the wheel to render thetire cavity 30 airtight. The integrated RFID tag andTPMS sensor 10A preferably is mounted on theinnerliner 28 of thetire 12 and is disposed in thetire cavity 30. Of course, all embodiments of the integrated RFID tag andTPMS sensor 10A-10H may be employed in thetire 12. - By way of background, turning to
FIGS. 2A-2D , an integrated RFID tag and TPMS sensor of theprior art 2 is shown. The prior art integrated RFID tag andTPMS sensor 2 includes a printedcircuit board 3 and acoil antenna 4 that is electronically attached to the printed circuit board. Thecoil antenna 4 is directly placed on the printedcircuit board 3 andsolder 5 is applied to bond the antenna to the printed circuit board. This structure may create issues, such as difficulty in placing thecoil antenna 4 at a repeatable, exact location on the printedcircuit board 3, leading to undesirable variation in alignment and antenna length. There is also limited surface contact between thecoil antenna 4 and the printedcircuit board 3 for soldering 5, which may cause undesirable variation in the strength of the bond between the antenna and the printed circuit board and a decrease in bond durability. When asecond coil antenna 6 is mounted to the printedcircuit board 3 with thefirst coil antenna 4, each antenna is soldered to separate area on the printed circuit board, which may create a different wave form contact between the two antennas that impairs the performance of the antennas. - Referring to
FIGS. 3A-3F , the structure of the first exemplary embodiment of the integrated RFID tag andTPMS sensor 10A is shown. The integrated RFID tag andTPMS sensor 10A includes anRFID tag 32, which in turn includes anintegrated circuit 34. Theintegrated circuit 34 is carried on a printedcircuit board 36 and processes and stores data for thetire 12. More particularly, theintegrated circuit 36 includes electronic memory capacity for storing identification (ID) information for eachtire 12, known as tire ID information. - The tire ID information may include manufacturing information for the
tire 12, such as: the tire type; tire model; size information, such as rim size, width, and outer diameter; manufacturing location; manufacturing date; a treadcap code that includes or correlates to a compound identification; and a mold code that includes or correlates to a tread structure identification. The tire ID information may also include a service history or other information to identify specific features and parameters of eachtire 12, as well as mechanical characteristics of the tire. - The
integrated circuit 34 also modulates and demodulates a radio frequency signal for communication with an external reader (not shown) through anantenna 40, which will be described in greater detail below. - A
TPMS sensor 38 preferably is mounted on theRFID tag 32, and thus is in electronic communication with theintegrated circuit 34 and theantenna 40. TheTPMS sensor 38 preferably includes a pressure sensor that measures the pressure in thetire cavity 30, and may include a temperature sensor that measures the temperature in the tire cavity and/or another component of thetire 12. TheTPMS sensor 38 may correlate the pressure and temperature measurements. Other sensors may also be mounted on theRFID tag 32, such as a stress sensor, a strain sensor, vibration sensor, accelerometer, and the like. - The
antenna 40 preferably includes two coil antenna wires 42 a and 42 b, which are each formed in a helical shape. Theantenna 40 receives and transmits a signal to the external reader using a radio frequency, thus facilitating communication between the integrated RFID tag andTPMS sensor 10A and the reader. The configuration of theRFID tag 32, integratedcircuit 34, printedcircuit board 36,TPMS sensor 38, andantenna 40 is more fully described in U.S. Patent Application Publication No. 2021/0016614, which is owned by the same Assignee as the present invention, The Goodyear Tire & Rubber Company, and is incorporated herein by reference in its entirety. - Each antenna wire 42 a and 42 b includes a first end 44 a and 44 b, respectively, which is mounted to the printed
circuit board 36. For the purpose of convenience, the connection of the first antenna wire 42 a to the printedcircuit board 36 will be described, with the understanding that the description also applies to the connection of the second antenna wire 42 b to the printed circuit board. Asolder pad 46 preferably is formed on the printedcircuit board 36, and the first end 44 a of the antenna 42 a is mounted to the solder pad withsolder 48. The first end 44 a of the antenna 42 a is electrically connected to theintegrated circuit 34 through conductive traces on the printedcircuit board 36 that extend between thesolder pad 46 and the integrated circuit. - The first embodiment of the integrated RFID tag and
TPMS sensor 10A includes amechanical interlock 50 between the first end 44 a of the antenna wire 42 a and the printedcircuit board 36. Themechanical interlock 50 includes features that secure the first end 44 a of the antenna wire 42 a to the printedcircuit board 36. More particularly, astraight slot 52 is formed in the printedcircuit board 36 by milling or another forming technique. Theslot 52 does not extend through the entire thickness of the printedcircuit board 36. A correspondingstraight slot 54 is formed in thesolder pad 46, and the first end 44 a of the antenna wire 42 a is formed with astraight terminus 56. Thestraight terminus 56 of the antenna wire 42 a seats in the alignedslots circuit board 36 receives and mechanically engages theterminus 56 of the antenna wire 42 a. - After the
straight terminus 56 of the antenna wire 42 a is engaged in theslots solder 48 preferably is deposited on thesolder pad 46 to secure the connection of the antenna wire to the printedcircuit board 36. As mentioned above, the second antenna wire 42 b is connected to the printedcircuit board 36 in the same manner as the first antenna wire 42 a. - The first embodiment of the integrated RFID tag and
TPMS sensor 10A thus provides amechanical interlock 50 between the first end 44 a, 44 b of each respective antenna 42 a, 42 b and the printedcircuit board 36. Themechanical interlock 50 enables secure, convenient, and repeatable placement of each respective antenna 42 a, 42 b on the printedcircuit board 36. By seating in theslots mechanical interlock 50 also enables easy soldering on a flat surface, which increases the durability of the bond between the antenna wires 42 a, 42 b and the printedcircuit board 36. - Turning to
FIGS. 4A-4F , the structure of a second exemplary embodiment of the integrated RFID tag andTPMS sensor 10B is shown. The second embodiment of the integrated RFID tag andTPMS sensor 10B includes anRFID tag 32, integratedcircuit 34, printedcircuit board 36,TPMS sensor 38, andantenna 40 in a configuration that is similar to the description provided above for the first embodiment of the integrated RFID tag andTPMS sensor 10A. Theantenna 40 also includes a first antenna wire 42 a and a second antenna wire 42 b, each of which includes a first end 44 a and 44 b, respectively, also as described above. - For the purpose of convenience, the connection of the first antenna wire 42 a to the printed
circuit board 36 will be described, with the understanding that the description also applies to the connection of the second antenna wire 42 b to the printed circuit board. Asolder pad 46 preferably is formed on the printedcircuit board 36, and the first end 44 a of the antenna 42 a is mounted to the solder pad withsolder 48. The first end 44 a of the antenna 42 a is electrically connected to theintegrated circuit 34 through conductive traces on the printedcircuit board 36 that extend between thesolder pad 46 and the integrated circuit. - The second embodiment of the integrated RFID tag and
TPMS sensor 10B includes amechanical interlock 58 between the first end 44 a of the antenna wire 42 a and the printedcircuit board 36. Themechanical interlock 58 includes features that secure the first end 44 a of the antenna wire 42 a to the printedcircuit board 36. More particularly, acircular slot 60 is formed in the printedcircuit board 36 by milling or another forming technique. Theslot 60 does not extend through the entire thickness of the printedcircuit board 36. A correspondingcircular slot 62 is formed in thesolder pad 46, and the first end 44 a of the antenna wire 42 a is formed with acircular terminus 56. Preferably, thecircular terminus 56 is formed by bending onepitch 66 of the first end 44 a of the coiled antenna wire 42 a to an angle that is about ninety (90) degrees relative to the remainder of the coiled antenna pitches. Thecircular terminus 64 of the antenna wire 42 a seats in the alignedslots circuit board 36 receives and mechanically engages theterminus 64 of the antenna wire 42 a. - After the
circular terminus 64 of the antenna wire 42 a is engaged in theslots solder 48 preferably is deposited on thesolder pad 46 to secure the connection of the antenna wire to the printedcircuit board 36. As mentioned above, the second antenna wire 42 b is connected to the printedcircuit board 36 in the same manner as the first antenna wire 42 a. - The second embodiment of the integrated RFID tag and
TPMS sensor 10B thus provides amechanical interlock 58 between the first end 44 a, 44 b of each respective antenna 42 a, 42 b and the printedcircuit board 36. Themechanical interlock 58 enables secure, convenient, and repeatable placement of each respective antenna 42 a, 42 b on the printedcircuit board 36. By seating in theslots mechanical interlock 58 also enables easy soldering on a flat surface, which increases the durability of the bond between the antenna wires 42 a, 42 b and the printedcircuit board 36. - Turning to
FIGS. 5A-5H , the structure of a third exemplary embodiment of the integrated RFID tag andTPMS sensor 10C is shown. The third embodiment of the integrated RFID tag andTPMS sensor 10C includes anRFID tag 32, integratedcircuit 34, printedcircuit board 36,TPMS sensor 38, andantenna 40 in a configuration that is similar to the description provided above for the first embodiment of the integrated RFID tag andTPMS sensor 10A. Theantenna 40 also includes a first antenna wire 42 a and a second antenna wire 42 b, each of which includes a first end 44 a and 44 b, respectively, also as described above. - For the purpose of convenience, the connection of the first antenna wire 42 a to the printed
circuit board 36 will be described, with the understanding that the description also applies to the connection of the second antenna wire 42 b to the printed circuit board. Asolder pad 46 preferably is formed on the printedcircuit board 36, and the first end 44 a of the antenna 42 a is mounted to the solder pad withsolder 48. The first end 44 a of the antenna 42 a is electrically connected to theintegrated circuit 34 through conductive traces on the printedcircuit board 36 that extend between thesolder pad 46 and the integrated circuit. - The third embodiment of the integrated RFID tag and
TPMS sensor 10C includes amechanical interlock 68 between the first end 44 a of the antenna wire 42 a and the printedcircuit board 36. Themechanical interlock 68 includes features that secure the first end 44 a of the antenna wire 42 a to the printedcircuit board 36. More particularly, astraight slot 70 is formed in the printedcircuit board 36 by milling or another forming technique. Theslot 70 extends through the entire thickness of the printedcircuit board 36. Theslot 70 is positioned so that a distance between atop edge 74 of the printedcircuit board 36 and a top 76 of the slot is less than aninside diameter 78 of the coiled antenna wire 42, creating aninsert 86. Astraight slot 80 is formed in thesolder pad 46 and aligns with theslot 70 in the printedcircuit board 36. Arecess 82 is formed in the printedcircuit board 36 near thestraight slot 70, and does not extend through the thickness of the printed circuit board. - The first end 44 a of the antenna wire 42 a includes a terminus 84. The first end 44 a of the antenna wire 42 a engages the
insert 86 of the printedcircuit board 36, and the terminus 84 seats in therecess 82. In this manner, the printedcircuit board 36 receives and mechanically engages the first end 44 a and the terminus 84 of the antenna wire 42 a. After the first end 44 a of the antenna wire 42 a engages theinsert 86 of the printedcircuit board 36, and the terminus 84 seats in therecess 82, thesolder 48 preferably is deposited on thesolder pad 46 to secure the connection of the antenna wire to the printedcircuit board 36. As mentioned above, the second antenna wire 42 b is connected to the printedcircuit board 36 in the same manner as the first antenna wire 42 a. - The third embodiment of the integrated RFID tag and
TPMS sensor 10C thus provides amechanical interlock 68 between the first end 44 a, 44 b of each respective antenna 42 a, 42 b and the printedcircuit board 36. Themechanical interlock 68 enables secure, convenient, and repeatable placement of each respective antenna 42 a, 42 b on the printedcircuit board 36. Theinterlock 68 also enables the length of each antenna wire 42 a, 42 b to be controlled, creating a uniform wave form contact between the first and second antenna wires. Themechanical interlock 68 further enables easy soldering, which increases the durability of the bond between the antenna wires 42 a, 42 b and the printedcircuit board 36. - Turning to
FIGS. 6A-6E , the structure of a fourth exemplary embodiment of the integrated RFID tag andTPMS sensor 10D is shown. The fourth embodiment of the integrated RFID tag andTPMS sensor 10D includes anRFID tag 32, integratedcircuit 34, printedcircuit board 36,TPMS sensor 38, andantenna 40 in a configuration that is similar to the description provided above for the first embodiment of the integrated RFID tag andTPMS sensor 10A. Theantenna 40 also includes a first antenna wire 42 a and a second antenna wire 42 b, each of which includes a first end 44 a and 44 b, respectively, also as described above. - For the purpose of convenience, the connection of the first antenna wire 42 a to the printed
circuit board 36 will be described, with the understanding that the description also applies to the connection of the second antenna wire 42 b to the printed circuit board. Asolder pad 46 preferably is formed on the printedcircuit board 36, and the first end 44 a of the antenna 42 a is mounted to the solder pad withsolder 48. The first end 44 a of the antenna 42 a is electrically connected to theintegrated circuit 34 through conductive traces on the printedcircuit board 36 that extend between thesolder pad 46 and the integrated circuit. - The fourth embodiment of the integrated RFID tag and
TPMS sensor 10D includes amechanical interlock 88 between the first end 44 a of the antenna wire 42 a and the printedcircuit board 36. Themechanical interlock 88 includes features that secure the first end 44 a of the antenna wire 42 a to the printedcircuit board 36. - More particularly, a
first slot 90 is formed in the printedcircuit board 36 by milling or another forming technique. Thefirst slot 90 extends in a straight manner across the printedcircuit board 36, with a semi-circular cross section through the entire thickness of the printedcircuit board 36. Asecond slot 92 is formed in the printedcircuit board 36 by milling or another forming technique. Thesecond slot 92 extends in a straight manner across the printedcircuit board 36 parallel to thefirst slot 90, with a semi-circular cross section through the entire thickness of the printedcircuit board 36. Theslots distance 94 between abottom edge 96 of the first slot and atop edge 98 of the second slot is less than aninside diameter 100 of the coiled antenna wire 42, creating aninsert 102. Afirst slot 104 is formed in thesolder pad 46 in alignment with thefirst slot 90 in the printedcircuit board 36, and asecond slot 106 is formed in the solder pad in alignment with thesecond slot 92 in the printed circuit board. - The first end 44 a of the antenna wire 42 a engages the
insert 102 of the printedcircuit board 36. In this manner, the printedcircuit board 36 receives and mechanically engages the first end 44 a of the antenna wire 42 a. After the first end 44 a of the antenna wire 42 a engages theinsert 102 of the printedcircuit board 36, thesolder 48 preferably is deposited on thesolder pad 46 to secure the connection of the antenna wire to the printedcircuit board 36. As mentioned above, the second antenna wire 42 b is connected to the printedcircuit board 36 in the same manner as the first antenna wire 42 a. - The fourth embodiment of the integrated RFID tag and
TPMS sensor 10D thus provides amechanical interlock 88 between the first end 44 a, 44 b of each respective antenna 42 a, 42 b and the printedcircuit board 36. Themechanical interlock 88 enables secure, convenient, and repeatable placement of each respective antenna 42 a, 42 b on the printedcircuit board 36. Theinterlock 88 also enables the length of each antenna wire 42 a, 42 b to be controlled, creating a uniform wave form contact between the first and second antenna wires. Themechanical interlock 88 further enables easy soldering, which increases the durability of the bond between the antenna wires 42 a, 42 b and the printedcircuit board 36. - Turning to
FIGS. 7A-7F , the structure of a fifth exemplary embodiment of the integrated RFID tag andTPMS sensor 10E is shown. The fifth embodiment of the integrated RFID tag andTPMS sensor 10E includes anRFID tag 32, integratedcircuit 34, printedcircuit board 36,TPMS sensor 38, andantenna 40 in a configuration that is similar to the description provided above for the first embodiment of the integrated RFID tag andTPMS sensor 10A. Theantenna 40 also includes a first antenna wire 42 a and a second antenna wire 42 b, each of which includes a first end 44 a and 44 b, respectively, also as described above. - For the purpose of convenience, the connection of the first antenna wire 42 a to the printed
circuit board 36 will be described, with the understanding that the description also applies to the connection of the second antenna wire 42 b to the printed circuit board. Asolder pad 46 preferably is formed on the printedcircuit board 36, and the first end 44 a of the antenna 42 a is mounted to the solder pad withsolder 48. The first end 44 a of the antenna 42 a is electrically connected to theintegrated circuit 34 through conductive traces on the printedcircuit board 36 that extend between thesolder pad 46 and the integrated circuit. - The fifth embodiment of the integrated RFID tag and
TPMS sensor 10E includes amechanical interlock 108 between the first end 44 a of the antenna wire 42 a and the printedcircuit board 36. Themechanical interlock 108 includes features that secure the first end 44 a of the antenna wire 42 a to the printedcircuit board 36. - More particularly, a
first slot 110 is formed in the printedcircuit board 36 by milling or another forming technique. Thefirst slot 110 extends in a straight manner across the printedcircuit board 36, with a semi-circular cross section through the entire thickness of the printedcircuit board 36. Asecond slot 112 is formed in the printedcircuit board 36 by milling or another forming technique. Thesecond slot 112 extends in a straight manner across the printedcircuit board 36 parallel to thefirst slot 110, with a semi-circular cross section through the entire thickness of the printedcircuit board 36. Thesecond slot 112 is formed with a length that is greater than a length of thefirst slot 110. Theslots distance 114 between abottom edge 116 of the first slot and atop edge 118 of the second slot is less than aninside diameter 120 of the coiled antenna wire 42, creating aninsert 122. Afirst slot 124 is formed in thesolder pad 46 in alignment with thefirst slot 110 in the printedcircuit board 36, and asecond slot 126 is formed in the solder pad in alignment with thesecond slot 112 in the printed circuit board. - A
recess 128 is formed in the printedcircuit board 36 near thefirst slot 110, and does not extend through the thickness of the printed circuit board. The first end 44 a of the antenna wire 42 a includes aterminus 130. The first end 44 a of the antenna wire 42 a engages theinsert 122 of the printedcircuit board 36, and theterminus 130 seats in therecess 128. In this manner, the printedcircuit board 36 receives and mechanically engages the first end 44 a and theterminus 130 of the antenna wire 42 a. After the first end 44 a of the antenna wire 42 a engages theinsert 122 of the printedcircuit board 36, and theterminus 130 seats in therecess 128, thesolder 48 preferably is deposited on thesolder pad 46 to secure the connection of the antenna wire to the printedcircuit board 36. As mentioned above, the second antenna wire 42 b is connected to the printedcircuit board 36 in the same manner as the first antenna wire 42 a. - The fifth embodiment of the integrated RFID tag and
TPMS sensor 10E thus provides amechanical interlock 108 between the first end 44 a, 44 b of each respective antenna 42 a, 42 b and the printedcircuit board 36. Themechanical interlock 108 enables secure, convenient, and repeatable placement of each respective antenna 42 a, 42 b on the printedcircuit board 36. Theinterlock 108 also enables the length of each antenna wire 42 a, 42 b to be controlled, creating a uniform wave form contact between the first and second antenna wires. Themechanical interlock 108 further enables easy soldering, which increases the durability of the bond between the antenna wires 42 a, 42 b and the printedcircuit board 36. - Turning to
FIGS. 8A-8F , the structure of a sixth exemplary embodiment of the integrated RFID tag andTPMS sensor 10F is shown. The sixth embodiment of the integrated RFID tag andTPMS sensor 10F includes anRFID tag 32, integratedcircuit 34, printedcircuit board 36,TPMS sensor 38, andantenna 40 in a configuration that is similar to the description provided above for the first embodiment of the integrated RFID tag andTPMS sensor 10A. Theantenna 40 also includes a first antenna wire 42 a and a second antenna wire 42 b, each of which includes a first end 44 a and 44 b, respectively, also as described above. - For the purpose of convenience, the connection of the first antenna wire 42 a to the printed
circuit board 36 will be described, with the understanding that the description also applies to the connection of the second antenna wire 42 b to the printed circuit board. Asolder pad 46 preferably is formed on the printedcircuit board 36, and the first end 44 a of the antenna 42 a is mounted to the solder pad withsolder 48. The first end 44 a of the antenna 42 a is electrically connected to theintegrated circuit 34 through conductive traces on the printedcircuit board 36 that extend between thesolder pad 46 and the integrated circuit. - The sixth embodiment of the integrated RFID tag and
TPMS sensor 10F includes amechanical interlock 132 between the first end 44 a of the antenna wire 42 a and the printedcircuit board 36. Themechanical interlock 132 includes features that secure the first end 44 a of the antenna wire 42 a to the printedcircuit board 36. - More particularly, a
first slot 134 is formed in the printedcircuit board 36 by milling or another forming technique. Thefirst slot 134 extends in a straight manner across the printedcircuit board 36, with a straight cross section through the entire thickness of the printedcircuit board 36. Asecond slot 136 is formed in the printedcircuit board 36 by milling or another forming technique. Thesecond slot 136 extends in a straight manner across the printedcircuit board 36 parallel to thefirst slot 134, with a straight cross section through the entire thickness of the printedcircuit board 36. Thesecond slot 136 is formed with a length that is greater than a length of thefirst slot 134. Theslots distance 138 between abottom edge 140 of the first slot and atop edge 142 of the second slot is less than aninside diameter 144 of the coiled antenna wire 42, creating aninsert 146. Afirst slot 148 is formed in thesolder pad 46 in alignment with thefirst slot 134 in the printedcircuit board 36, and asecond slot 150 is formed in the solder pad in alignment with thesecond slot 136 in the printed circuit board. - A
recess 152 is formed in the printedcircuit board 36 near thefirst slot 134, and does not extend through the thickness of the printed circuit board. The first end 44 a of the antenna wire 42 a includes aterminus 154. The first end 44 a of the antenna wire 42 a engages theinsert 146 of the printedcircuit board 36, and theterminus 154 seats in therecess 152. In this manner, the printedcircuit board 36 receives and mechanically engages the first end 44 a and theterminus 154 of the antenna wire 42 a. After the first end 44 a of the antenna wire 42 a engages theinsert 146 of the printedcircuit board 36, and theterminus 154 seats in therecess 152, thesolder 48 preferably is deposited on thesolder pad 46 to secure the connection of the antenna wire to the printedcircuit board 36. As mentioned above, the second antenna wire 42 b is connected to the printedcircuit board 36 in the same manner as the first antenna wire 42 a. - The sixth embodiment of the integrated RFID tag and
TPMS sensor 10F thus provides amechanical interlock 132 between the first end 44 a, 44 b of each respective antenna 42 a, 42 b and the printedcircuit board 36. Themechanical interlock 132 enables secure, convenient, and repeatable placement of each respective antenna 42 a, 42 b on the printedcircuit board 36. Theinterlock 132 also enables the length of each antenna wire 42 a, 42 b to be controlled, creating a uniform wave form contact between the first and second antenna wires. Themechanical interlock 132 further enables easy soldering, which increases the durability of the bond between the antenna wires 42 a, 42 b and the printedcircuit board 36. - Turning to
FIGS. 9A-9F , the structure of a seventh exemplary embodiment of the integrated RFID tag andTPMS sensor 10G is shown. The seventh embodiment of the integrated RFID tag andTPMS sensor 10G includes anRFID tag 32, integratedcircuit 34, printedcircuit board 36,TPMS sensor 38, andantenna 40 in a configuration that is similar to the description provided above for the first embodiment of the integrated RFID tag andTPMS sensor 10A. Theantenna 40 also includes a first antenna wire 42 a and a second antenna wire 42 b, each of which includes a first end 44 a and 44 b, respectively, also as described above. - For the purpose of convenience, the connection of the first antenna wire 42 a to the printed
circuit board 36 will be described, with the understanding that the description also applies to the connection of the second antenna wire 42 b to the printed circuit board. Asolder pad 46 preferably is formed on the printedcircuit board 36, and the first end 44 a of the antenna 42 a is mounted to the solder pad withsolder 48. The first end 44 a of the antenna 42 a is electrically connected to theintegrated circuit 34 through conductive traces on the printedcircuit board 36 that extend between thesolder pad 46 and the integrated circuit. - The seventh embodiment of the integrated RFID tag and
TPMS sensor 10G includes amechanical interlock 156 between the first end 44 a of the antenna wire 42 a and the printedcircuit board 36. Themechanical interlock 156 includes features that secure the first end 44 a of the antenna wire 42 a to the printedcircuit board 36. More particularly, afirst slot 158 is formed in the printedcircuit board 36 by milling or another forming technique. Thefirst slot 134 extends in a straight manner into the printedcircuit board 36, with a straight cross section through the entire thickness of the printedcircuit board 36. Afirst opening 162 is formed in the printedcircuit board 36 in parallel alignment with thefirst slot 134, and extends through the printed circuit board. Adistance 174 between thefirst slot 158 and thefirst opening 162 matches apitch 176 of the coiled antenna wire 42 a. - A
second slot 164 is formed in the printedcircuit board 36 by milling or another forming technique. Thesecond slot 164 extends into the printedcircuit board 36 parallel to thefirst slot 158 for a distance that is less than the first slot, with a straight cross section through the entire thickness of the printed circuit board. Thesecond slot 164 is formed with a length that is less than or shorter than a length of thefirst slot 158. Asecond opening 166 is formed in the printedcircuit board 36 in parallel alignment with thesecond slot 164, and extends through the printed circuit board. Athird opening 168 is formed in the printedcircuit board 36 in parallel alignment with thesecond slot 164 and thesecond opening 166, and extends through the printed circuit board. Adistance 178 between thesecond slot 164 and thesecond opening 166 matches thepitch 176 of the coiled antenna wire 42 a, and adistance 180 between thesecond opening 166 and thethird opening 168 also matches the pitch of the coiled antenna wire. - The
first slot 158 and thefirst opening 162 are spaced apart from thesecond slot 164, thesecond opening 166, and thethird opening 168, creating adistance 170 that is slightly less than aninside diameter 172 of the coiled antenna wire 42. Aslot 182 is formed in thesolder pad 46 in alignment with thefirst slot 158 in the printedcircuit board 36, afirst opening 184 is formed in the solder pad in alignment with thefirst opening 162, asecond opening 186 is formed in the solder pad in alignment with thesecond opening 166, and athird opening 188 is formed in the solder pad in alignment with thethird opening 168. - A
recess 190 is formed in the printedcircuit board 36 parallel to and near thefirst opening 162, and does not extend through the thickness of the printed circuit board. Adistance 192 between thefirst opening 162 and therecess 190 matches thepitch 176 of the coiled antenna wire 42 a. The first end 44 a of the antenna wire 42 a includes aterminus 194. This structure enables the first end 44 a of the antenna wire 42 a to wind through thefirst slot 158, thesecond slot 164, thefirst opening 162, thesecond opening 166, and thethird opening 168, with theterminus 194 seating in therecess 190. In this manner, the printedcircuit board 36 receives and mechanically engages the first end 44 a and theterminus 194 of the antenna wire 42 a. - After the first end 44 a of the antenna wire 42 a engages the
first slot 158, thesecond slot 164, thefirst opening 162, thesecond opening 166, and thethird opening 168, and theterminus 194 seats in therecess 190, thesolder 48 preferably is deposited on thesolder pad 46 to secure the connection of the antenna wire to the printedcircuit board 36. As mentioned above, the second antenna wire 42 b is connected to the printedcircuit board 36 in the same manner as the first antenna wire 42 a. - The seventh embodiment of the integrated RFID tag and
TPMS sensor 10G thus provides amechanical interlock 156 between the first end 44 a, 44 b of each respective antenna 42 a, 42 b and the printedcircuit board 36. Themechanical interlock 156 enables secure, convenient, and repeatable placement of each respective antenna 42 a, 42 b on the printedcircuit board 36. Theinterlock 156 also enables the length of each antenna wire 42 a, 42 b to be controlled, creating a uniform wave form contact between the first and second antenna wires. Themechanical interlock 156 further enables easy soldering, which increases the durability of the bond between the antenna wires 42 a, 42 b and the printedcircuit board 36. - Turning to
FIGS. 10A-10G , the structure of an eighth exemplary embodiment of the integrated RFID tag andTPMS sensor 10H is shown. The eighth embodiment of the integrated RFID tag andTPMS sensor 10H includes anRFID tag 32, integratedcircuit 34, printedcircuit board 36,TPMS sensor 38, andantenna 40 in a configuration that is similar to the description provided above for the first embodiment of the integrated RFID tag andTPMS sensor 10A. Theantenna 40 also includes a first antenna wire 42 a and a second antenna wire 42 b, each of which includes a first end 44 a and 44 b, respectively, also as described above. - For the purpose of convenience, the connection of the first antenna wire 42 a to the printed
circuit board 36 will be described, with the understanding that the description also applies to the connection of the second antenna wire 42 b to the printed circuit board. Asolder pad 46 preferably is formed on the printedcircuit board 36, and the first end 44 a of the antenna 42 a is mounted to the solder pad withsolder 48. The first end 44 a of the antenna 42 a is electrically connected to theintegrated circuit 34 through conductive traces on the printedcircuit board 36 that extend between thesolder pad 46 and the integrated circuit. - The eighth embodiment of the integrated RFID tag and
TPMS sensor 10H includes amechanical interlock 196 between the first end 44 a of the antenna wire 42 a and the printedcircuit board 36. Themechanical interlock 196 includes features that secure the first end 44 a of the antenna wire 42 a to the printedcircuit board 36. More particularly, afirst opening 198 is formed in the printedcircuit board 36 by milling or another forming technique, and extends through the printed circuit board. Asecond opening 200 is formed in the printedcircuit board 36 in parallel alignment with thefirst opening 198, and extends through the printed circuit board. Adistance 206 between thefirst opening 198 and thesecond opening 200 matches apitch 208 of the coiled antenna wire 42 a. - The
first opening 198 and thesecond opening 200 are spaced apart from atop edge 202 of the printedcircuit board 36, creating adistance 204 that is slightly less than aninside diameter 210 of the coiled antenna wire 42. Afirst opening 212 is formed in thesolder pad 46 in alignment with thefirst opening 198 in the printedcircuit board 36, and asecond opening 214 is formed in the solder pad in alignment with thesecond opening 214. Arecess 216 is formed in the printedcircuit board 36 parallel to and near thesecond opening 200, and does not extend through the thickness of the printed circuit board. Adistance 218 between thesecond opening 200 and therecess 216 matches thepitch 208 of the coiled antenna wire 42 a. The first end 44 a of the antenna wire 42 a includes aterminus 220. - This structure enables the first end 44 a of the antenna wire 42 a to wind over the
top edge 202 of the printedcircuit board 36, through thefirst opening 198, and through thesecond opening 200, with theterminus 220 seating in therecess 216. In this manner, the printedcircuit board 36 receives and mechanically engages the first end 44 a and theterminus 220 of the antenna wire 42 a. After the first end 44 a of the antenna wire 42 a engages thetop edge 202 of the printedcircuit board 36, thefirst opening 198, and thesecond opening 200, and theterminus 220 seats in therecess 216, thesolder 48 preferably is deposited on thesolder pad 46 to secure the connection of the antenna wire to the printedcircuit board 36. As mentioned above, the second antenna wire 42 b is connected to the printedcircuit board 36 in the same manner as the first antenna wire 42 a. - The eighth embodiment of the integrated RFID tag and
TPMS sensor 10H thus provides amechanical interlock 196 between the first end 44 a, 44 b of each respective antenna 42 a, 42 b and the printedcircuit board 36. Themechanical interlock 196 enables secure, convenient, and repeatable placement of each respective antenna 42 a, 42 b on the printedcircuit board 36. Theinterlock 196 also enables the length of each antenna wire 42 a, 42 b to be controlled, creating a uniform wave form contact between the first and second antenna wires. Themechanical interlock 196 further enables easy soldering, which increases the durability of the bond between the antenna wires 42 a, 42 b and the printedcircuit board 36. - In this manner, the integrated RFID tag and
TPMS sensor 10A-10H of the present invention employs a structure that includes an antenna connection to a printedcircuit board 36 which provides consistent placement and alignment of theantenna 40 for optimum performance. The printedcircuit board 36 includes features that guide the antenna coil 44 a, 44 b for optimum placement, thereby simplifying repeatable antenna placement. The features preferably are formed in the printedcircuit board 36 during manufacture of the board, desirably eliminating the need for special forming tools or processes. - The mechanical interlock of the integrated RFID tag and
TPMS sensor 10A-10H of the present invention includes features that ensure consistent and repeatable installation of each respective antenna 42 a, 42 b on the printedcircuit board 36, which in turn ensures performance of the antenna. The mechanical interlock features of the integrated RFID tag andTPMS sensor 10A-10H also enable the length of each antenna wire 42 a, 42 b to be controlled, creating a uniform wave form contact between the first and second antenna wires. The mechanical interlock features further enable easy soldering, which increases the durability of the bond between the antenna wires 42 a, 42 b and the printedcircuit board 36. - The present invention also includes a method of forming an integrated RFID tag and
TPMS sensor 10A-10H. The method includes steps in accordance with the description that is presented above and shown inFIGS. 1 and 3A-10G . It is to be understood that the structure of the above-described the integrated RFID tag andTPMS sensor 10A-10H may be altered or rearranged, or components known to those skilled in the art omitted or added, without affecting the overall concept or operation of the invention. For example, the integrated RFID tag andTPMS sensor 10A-10H may be formed as an integrated unit as described above, or may be formed with a separable RFID tag and TPMS sensor. - The invention has been described with reference to preferred embodiments. Potential modifications and alterations will occur to others upon a reading and understanding of this description. It is to be understood that all such modifications and alterations are included in the scope of the invention as set forth in the appended claims, or the equivalents thereof.
Claims (20)
1. An integrated radio frequency identification tag and tire pressure monitoring system sensor comprising:
a radio frequency identification tag, the radio frequency identification tag including an integrated circuit;
a printed circuit board carrying the integrated circuit;
a tire pressure monitoring system sensor being mounted on the radio frequency identification tag;
an antenna including at least one coil antenna wire, the at least one antenna wire being formed in a helical shape and being electrically connected to the integrated circuit;
the at least one antenna wire including a first end that is mounted to the printed circuit board; and
a mechanical interlock between the first end of the antenna wire and the printed circuit board, the mechanical interlock including features securing the first end of the antenna wire to the printed circuit board.
2. The integrated radio frequency identification tag and tire pressure monitoring system sensor of claim 1 , wherein the features include a straight slot formed in the printed circuit board, and wherein the first end of the antenna wire is formed with a straight terminus that seats in the slot.
3. The integrated radio frequency identification tag and tire pressure monitoring system sensor of claim 2 , wherein the slot does not extend through an entire thickness of the printed circuit board.
4. The integrated radio frequency identification tag and tire pressure monitoring system sensor of claim 1 , wherein the features include a circular slot formed in the printed circuit board, and wherein the first end of the antenna wire is formed with a circular terminus that seats in the slot.
5. The integrated radio frequency identification tag and tire pressure monitoring system sensor of claim 4 , wherein the slot does not extend through an entire thickness of the printed circuit board.
6. The integrated radio frequency identification tag and tire pressure monitoring system sensor of claim 4 , wherein the circular terminus is formed by bending one pitch of the first end of the antenna wire to an angle that is about ninety degrees relative to a remainder of antenna pitches.
7. The integrated radio frequency identification tag and tire pressure monitoring system sensor of claim 1 , wherein the features include a straight slot formed in the printed circuit board, the slot extending through a thickness of the printed circuit board and being positioned to create an insert between a top edge of the printed circuit board and the slot that is less than an inside diameter of the antenna wire, wherein the first end of the antenna wire engages the insert.
8. The integrated radio frequency identification tag and tire pressure monitoring system sensor of claim 7 , wherein a recess is formed in the printed circuit board near the straight slot and does not extend through the thickness of the printed circuit board, and wherein the first end of the antenna wire includes a terminus that seats in the recess.
9. The integrated radio frequency identification tag and tire pressure monitoring system sensor of claim 1 , wherein the features include:
a first slot formed in the printed circuit board, the first slot extending through a thickness of the printed circuit board;
a second slot formed in the printed circuit board parallel to the first slot, the second slot extending through the thickness of the printed circuit board; and
wherein the first and second slots are positioned to create an insert between them that is less than an inside diameter of the antenna wire, and the first end of the antenna wire engages the insert.
10. The integrated radio frequency identification tag and tire pressure monitoring system sensor of claim 9 , wherein the first slot and the second slot are formed with equal lengths.
11. The integrated radio frequency identification tag and tire pressure monitoring system sensor of claim 9 , wherein the second slot is formed with a length that is longer than a length of the first slot.
12. The integrated radio frequency identification tag and tire pressure monitoring system sensor of claim 11 , wherein the first slot includes a first slot semi-circular cross section and the second slot includes a second slot semi-circular cross section.
13. The integrated radio frequency identification tag and tire pressure monitoring system sensor of claim 11 , wherein the first slot includes a first slot straight cross section and the second slot includes a second slot straight cross section.
14. The integrated radio frequency identification tag and tire pressure monitoring system sensor of claim 11 , wherein a recess is formed in the printed circuit board near the first slot and does not extend through the thickness of the printed circuit board, and wherein the first end of the antenna wire includes a terminus that seats in the recess.
15. The integrated radio frequency identification tag and tire pressure monitoring system sensor of claim 1 , wherein the features include:
a first slot formed in the printed circuit board and extending through a thickness of the printed circuit board;
a first opening formed in the printed circuit board in parallel alignment with the first slot and extending through the thickness of the printed circuit board, wherein a distance between the first slot and the first opening matches a pitch of the antenna wire;
a second slot formed in the printed circuit board and extending through the thickness of the printed circuit board;
a second opening formed in the printed circuit board in parallel alignment with the second slot and extending through the thickness of the printed circuit board;
a third opening formed in the printed circuit board in parallel alignment with the second slot and the second opening extending through the thickness of the printed circuit board;
wherein a distance between the second slot and the second opening matches the pitch of the antenna wire, and a distance between the second opening and the third opening matches the pitch of the antenna wire; and
wherein the first end of the antenna wire winds through the first slot, the second slot, the first opening, the second opening, and the third opening.
16. The integrated radio frequency identification tag and tire pressure monitoring system sensor of claim 15 , wherein a recess is formed in the printed circuit board parallel to and near the first opening and does not extend through the thickness of the printed circuit board, and the first end of the antenna wire includes a terminus that seats in the recess.
17. The integrated radio frequency identification tag and tire pressure monitoring system sensor of claim 1 , wherein the features include:
a first opening formed in the printed circuit board and extending through a thickness of the printed circuit board;
a second opening formed in the printed circuit board in parallel alignment with the first opening and extending through the thickness of the printed circuit board, and wherein a distance between the first opening and the second opening matches a pitch of the antenna wire; and
wherein the first end of the antenna wire winds through the first opening, over a top edge of the printed circuit board, and through the second opening.
18. The integrated radio frequency identification tag and tire pressure monitoring system sensor of claim 17 , wherein a recess is formed in the printed circuit board parallel to and near the second opening and does not extend through the thickness of the printed circuit board, and the first end of the antenna wire includes a terminus that seats in the recess.
19. The integrated radio frequency identification tag and tire pressure monitoring system sensor of claim 1 , further comprising a solder pad formed on the printed circuit board, wherein the first end of the antenna is mounted to the solder pad with solder.
20. The integrated radio frequency identification tag and tire pressure monitoring system sensor of claim 1 , further comprising a pneumatic tire, the integrated radio frequency identification tag and tire pressure monitoring system sensor being mounted to the pneumatic tire.
Priority Applications (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US18/047,339 US20230161993A1 (en) | 2021-11-22 | 2022-10-18 | Antenna connection for integrated rfid tag and tpms sensor |
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US202163281893P | 2021-11-22 | 2021-11-22 | |
US18/047,339 US20230161993A1 (en) | 2021-11-22 | 2022-10-18 | Antenna connection for integrated rfid tag and tpms sensor |
Publications (1)
Publication Number | Publication Date |
---|---|
US20230161993A1 true US20230161993A1 (en) | 2023-05-25 |
Family
ID=83902902
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US18/047,339 Pending US20230161993A1 (en) | 2021-11-22 | 2022-10-18 | Antenna connection for integrated rfid tag and tpms sensor |
Country Status (2)
Country | Link |
---|---|
US (1) | US20230161993A1 (en) |
EP (1) | EP4184710A1 (en) |
Cited By (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20230166570A1 (en) * | 2020-03-22 | 2023-06-01 | Safran | Device for measuring an operating variable of a tyre |
Citations (5)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US5894292A (en) * | 1996-12-09 | 1999-04-13 | Motorola, Inc. | Antenna assembly for a portable communications device |
US20050088361A1 (en) * | 2003-10-23 | 2005-04-28 | Kelly Charles E. | Robust antenna connection for an electronics component assembly in a tire |
WO2009134243A1 (en) * | 2008-04-29 | 2009-11-05 | Michelin Recherche Et Technique S.A. | In-plane rfid antenna |
WO2014094640A1 (en) * | 2012-12-20 | 2014-06-26 | Yuan Zhongxue | Rfid electronic tag aerial, electronic tag and processing method thereof |
CN106329134A (en) * | 2015-06-26 | 2017-01-11 | 神讯电脑(昆山)有限公司 | Helical Antenna Structure |
Family Cites Families (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN103887594A (en) * | 2012-12-20 | 2014-06-25 | 软控股份有限公司 | RFID electronic tag antenna and installation method thereof |
US20210016614A1 (en) | 2019-07-19 | 2021-01-21 | The Goodyear Tire & Rubber Company | Tire with an integrated rfid and tpms sensor |
FR3108402B1 (en) * | 2020-03-22 | 2022-06-17 | Safran | Device for measuring an operating parameter of a tire |
-
2022
- 2022-10-18 US US18/047,339 patent/US20230161993A1/en active Pending
- 2022-10-20 EP EP22202803.7A patent/EP4184710A1/en active Pending
Patent Citations (7)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US5894292A (en) * | 1996-12-09 | 1999-04-13 | Motorola, Inc. | Antenna assembly for a portable communications device |
US20050088361A1 (en) * | 2003-10-23 | 2005-04-28 | Kelly Charles E. | Robust antenna connection for an electronics component assembly in a tire |
US7138955B2 (en) * | 2003-10-23 | 2006-11-21 | Michelin Recherche Et Technique S.A. | Robust antenna connection for an electronics component assembly in a tire |
CN101036265A (en) * | 2003-10-23 | 2007-09-12 | 米其林技术公司 | Robust antenna connection for an electronics component assembly in a tire |
WO2009134243A1 (en) * | 2008-04-29 | 2009-11-05 | Michelin Recherche Et Technique S.A. | In-plane rfid antenna |
WO2014094640A1 (en) * | 2012-12-20 | 2014-06-26 | Yuan Zhongxue | Rfid electronic tag aerial, electronic tag and processing method thereof |
CN106329134A (en) * | 2015-06-26 | 2017-01-11 | 神讯电脑(昆山)有限公司 | Helical Antenna Structure |
Cited By (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20230166570A1 (en) * | 2020-03-22 | 2023-06-01 | Safran | Device for measuring an operating variable of a tyre |
Also Published As
Publication number | Publication date |
---|---|
EP4184710A1 (en) | 2023-05-24 |
Similar Documents
Publication | Publication Date | Title |
---|---|---|
EP3632705B1 (en) | Tire and tire manufacturing method | |
CN110035912B (en) | Tyre suitable for run-flat operation, provided with electronic components | |
US6474380B1 (en) | Pneumatic tire and monitoring device including dipole antenna | |
US6581657B1 (en) | Disposition of transponder coupling elements in tires | |
CN110035911B (en) | Radio frequency communication module for a tire | |
EP2524818B1 (en) | Embedded transponder and tire assembly and method of construction thereof | |
US11152684B2 (en) | Radiofrequency communication module for a tire | |
EP2186658B1 (en) | Tire and electronic device assembly and method of embedding an electronic device in a tire | |
US20090322480A1 (en) | Rfid tag and method of vehicle attachment thereof | |
EP3632709B1 (en) | Tire and tire manufacturing method | |
US11260705B2 (en) | Flexible tire sensor unit | |
US12240193B2 (en) | Method for producing a tire provided with a radiofrequency communications module | |
EP1210234A1 (en) | Disposition of transponder coupling elements in tires | |
US20200148011A1 (en) | Tire suitable for running flat, provided with an electronic unit | |
US20210021015A1 (en) | Reader system for tire with an integrated rfid and tpms sensor | |
CN110709263A (en) | Vehicle tyre | |
US20210016614A1 (en) | Tire with an integrated rfid and tpms sensor | |
JP4559837B2 (en) | Apparatus and method for incorporating annular antenna and electronic component into tire | |
US20230161993A1 (en) | Antenna connection for integrated rfid tag and tpms sensor | |
CN110770049A (en) | Tyre provided with an electronic unit and suitable for run-on | |
US20220126633A1 (en) | Tire | |
US10836223B1 (en) | Encapsulated embedded tire sensor unit | |
CN110998967B (en) | Antenna for an electronic component of a tyre | |
US7415873B2 (en) | Vehicle tire and the use of a temperature measuring system | |
EP4015256A1 (en) | Tire sensor container system |
Legal Events
Date | Code | Title | Description |
---|---|---|---|
AS | Assignment |
Owner name: THE GOODYEAR TIRE & RUBBER COMPANY, OHIO Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNOR:LIN, CHENG-HSIUNG;REEL/FRAME:061452/0837 Effective date: 20220804 |
|
STPP | Information on status: patent application and granting procedure in general |
Free format text: DOCKETED NEW CASE - READY FOR EXAMINATION |
|
STPP | Information on status: patent application and granting procedure in general |
Free format text: NON FINAL ACTION MAILED |
|
STPP | Information on status: patent application and granting procedure in general |
Free format text: RESPONSE TO NON-FINAL OFFICE ACTION ENTERED AND FORWARDED TO EXAMINER |