US20230332842A1 - Heat pipe and device - Google Patents
Heat pipe and device Download PDFInfo
- Publication number
- US20230332842A1 US20230332842A1 US18/211,643 US202318211643A US2023332842A1 US 20230332842 A1 US20230332842 A1 US 20230332842A1 US 202318211643 A US202318211643 A US 202318211643A US 2023332842 A1 US2023332842 A1 US 2023332842A1
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- Prior art keywords
- bushing
- capillary structure
- tube
- heat pipe
- section
- 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.)
- Abandoned
Links
- 239000012530 fluid Substances 0.000 claims abstract description 41
- 230000008020 evaporation Effects 0.000 claims abstract description 27
- 238000001704 evaporation Methods 0.000 claims abstract description 27
- 238000009833 condensation Methods 0.000 claims abstract description 22
- 230000005494 condensation Effects 0.000 claims abstract description 22
- 229910052751 metal Inorganic materials 0.000 claims description 18
- 239000002184 metal Substances 0.000 claims description 18
- 238000002156 mixing Methods 0.000 abstract description 3
- 230000000694 effects Effects 0.000 abstract description 2
- 239000007769 metal material Substances 0.000 description 26
- 238000000034 method Methods 0.000 description 16
- 239000007789 gas Substances 0.000 description 12
- 230000017525 heat dissipation Effects 0.000 description 11
- 238000005245 sintering Methods 0.000 description 11
- 230000008569 process Effects 0.000 description 7
- RYGMFSIKBFXOCR-UHFFFAOYSA-N Copper Chemical compound [Cu] RYGMFSIKBFXOCR-UHFFFAOYSA-N 0.000 description 6
- 229910052802 copper Inorganic materials 0.000 description 6
- 239000010949 copper Substances 0.000 description 6
- 239000007788 liquid Substances 0.000 description 5
- XKRFYHLGVUSROY-UHFFFAOYSA-N Argon Chemical compound [Ar] XKRFYHLGVUSROY-UHFFFAOYSA-N 0.000 description 4
- 229910052782 aluminium Inorganic materials 0.000 description 4
- XAGFODPZIPBFFR-UHFFFAOYSA-N aluminium Chemical compound [Al] XAGFODPZIPBFFR-UHFFFAOYSA-N 0.000 description 4
- 238000004519 manufacturing process Methods 0.000 description 4
- 229910044991 metal oxide Inorganic materials 0.000 description 3
- 150000004706 metal oxides Chemical class 0.000 description 3
- 239000000843 powder Substances 0.000 description 3
- 238000003466 welding Methods 0.000 description 3
- CSCPPACGZOOCGX-UHFFFAOYSA-N Acetone Chemical compound CC(C)=O CSCPPACGZOOCGX-UHFFFAOYSA-N 0.000 description 2
- LFQSCWFLJHTTHZ-UHFFFAOYSA-N Ethanol Chemical compound CCO LFQSCWFLJHTTHZ-UHFFFAOYSA-N 0.000 description 2
- 229910052786 argon Inorganic materials 0.000 description 2
- 238000009489 vacuum treatment Methods 0.000 description 2
- XLYOFNOQVPJJNP-UHFFFAOYSA-N water Substances O XLYOFNOQVPJJNP-UHFFFAOYSA-N 0.000 description 2
- 230000009471 action Effects 0.000 description 1
- 230000032683 aging Effects 0.000 description 1
- 239000003153 chemical reaction reagent Substances 0.000 description 1
- 230000007547 defect Effects 0.000 description 1
- 238000010438 heat treatment Methods 0.000 description 1
- 230000006872 improvement Effects 0.000 description 1
- 238000002844 melting Methods 0.000 description 1
- 230000008018 melting Effects 0.000 description 1
- 239000011148 porous material Substances 0.000 description 1
- 238000009877 rendering Methods 0.000 description 1
- 239000007787 solid Substances 0.000 description 1
- 238000001179 sorption measurement Methods 0.000 description 1
Images
Classifications
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28D—HEAT-EXCHANGE APPARATUS, NOT PROVIDED FOR IN ANOTHER SUBCLASS, IN WHICH THE HEAT-EXCHANGE MEDIA DO NOT COME INTO DIRECT CONTACT
- F28D15/00—Heat-exchange apparatus with the intermediate heat-transfer medium in closed tubes passing into or through the conduit walls ; Heat-exchange apparatus employing intermediate heat-transfer medium or bodies
- F28D15/02—Heat-exchange apparatus with the intermediate heat-transfer medium in closed tubes passing into or through the conduit walls ; Heat-exchange apparatus employing intermediate heat-transfer medium or bodies in which the medium condenses and evaporates, e.g. heat pipes
- F28D15/04—Heat-exchange apparatus with the intermediate heat-transfer medium in closed tubes passing into or through the conduit walls ; Heat-exchange apparatus employing intermediate heat-transfer medium or bodies in which the medium condenses and evaporates, e.g. heat pipes with tubes having a capillary structure
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28D—HEAT-EXCHANGE APPARATUS, NOT PROVIDED FOR IN ANOTHER SUBCLASS, IN WHICH THE HEAT-EXCHANGE MEDIA DO NOT COME INTO DIRECT CONTACT
- F28D15/00—Heat-exchange apparatus with the intermediate heat-transfer medium in closed tubes passing into or through the conduit walls ; Heat-exchange apparatus employing intermediate heat-transfer medium or bodies
- F28D15/02—Heat-exchange apparatus with the intermediate heat-transfer medium in closed tubes passing into or through the conduit walls ; Heat-exchange apparatus employing intermediate heat-transfer medium or bodies in which the medium condenses and evaporates, e.g. heat pipes
- F28D15/04—Heat-exchange apparatus with the intermediate heat-transfer medium in closed tubes passing into or through the conduit walls ; Heat-exchange apparatus employing intermediate heat-transfer medium or bodies in which the medium condenses and evaporates, e.g. heat pipes with tubes having a capillary structure
- F28D15/046—Heat-exchange apparatus with the intermediate heat-transfer medium in closed tubes passing into or through the conduit walls ; Heat-exchange apparatus employing intermediate heat-transfer medium or bodies in which the medium condenses and evaporates, e.g. heat pipes with tubes having a capillary structure characterised by the material or the construction of the capillary structure
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B21—MECHANICAL METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
- B21C—MANUFACTURE OF METAL SHEETS, WIRE, RODS, TUBES OR PROFILES, OTHERWISE THAN BY ROLLING; AUXILIARY OPERATIONS USED IN CONNECTION WITH METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL
- B21C37/00—Manufacture of metal sheets, bars, wire, tubes or like semi-manufactured products, not otherwise provided for; Manufacture of tubes of special shape
- B21C37/06—Manufacture of metal sheets, bars, wire, tubes or like semi-manufactured products, not otherwise provided for; Manufacture of tubes of special shape of tubes or metal hoses; Combined procedures for making tubes, e.g. for making multi-wall tubes
- B21C37/15—Making tubes of special shape; Making tube fittings
- B21C37/151—Making tubes with multiple passages
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B23—MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
- B23P—METAL-WORKING NOT OTHERWISE PROVIDED FOR; COMBINED OPERATIONS; UNIVERSAL MACHINE TOOLS
- B23P15/00—Making specific metal objects by operations not covered by a single other subclass or a group in this subclass
- B23P15/26—Making specific metal objects by operations not covered by a single other subclass or a group in this subclass heat exchangers or the like
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28D—HEAT-EXCHANGE APPARATUS, NOT PROVIDED FOR IN ANOTHER SUBCLASS, IN WHICH THE HEAT-EXCHANGE MEDIA DO NOT COME INTO DIRECT CONTACT
- F28D15/00—Heat-exchange apparatus with the intermediate heat-transfer medium in closed tubes passing into or through the conduit walls ; Heat-exchange apparatus employing intermediate heat-transfer medium or bodies
- F28D15/02—Heat-exchange apparatus with the intermediate heat-transfer medium in closed tubes passing into or through the conduit walls ; Heat-exchange apparatus employing intermediate heat-transfer medium or bodies in which the medium condenses and evaporates, e.g. heat pipes
- F28D15/0266—Heat-exchange apparatus with the intermediate heat-transfer medium in closed tubes passing into or through the conduit walls ; Heat-exchange apparatus employing intermediate heat-transfer medium or bodies in which the medium condenses and evaporates, e.g. heat pipes with separate evaporating and condensing chambers connected by at least one conduit; Loop-type heat pipes; with multiple or common evaporating or condensing chambers
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28D—HEAT-EXCHANGE APPARATUS, NOT PROVIDED FOR IN ANOTHER SUBCLASS, IN WHICH THE HEAT-EXCHANGE MEDIA DO NOT COME INTO DIRECT CONTACT
- F28D15/00—Heat-exchange apparatus with the intermediate heat-transfer medium in closed tubes passing into or through the conduit walls ; Heat-exchange apparatus employing intermediate heat-transfer medium or bodies
- F28D15/02—Heat-exchange apparatus with the intermediate heat-transfer medium in closed tubes passing into or through the conduit walls ; Heat-exchange apparatus employing intermediate heat-transfer medium or bodies in which the medium condenses and evaporates, e.g. heat pipes
- F28D15/0283—Means for filling or sealing heat pipes
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B21—MECHANICAL METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
- B21D—WORKING OR PROCESSING OF SHEET METAL OR METAL TUBES, RODS OR PROFILES WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
- B21D41/00—Application of procedures in order to alter the diameter of tube ends
- B21D41/04—Reducing; Closing
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B21—MECHANICAL METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
- B21D—WORKING OR PROCESSING OF SHEET METAL OR METAL TUBES, RODS OR PROFILES WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
- B21D53/00—Making other particular articles
- B21D53/02—Making other particular articles heat exchangers or parts thereof, e.g. radiators, condensers fins, headers
- B21D53/06—Making other particular articles heat exchangers or parts thereof, e.g. radiators, condensers fins, headers of metal tubes
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B23—MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
- B23P—METAL-WORKING NOT OTHERWISE PROVIDED FOR; COMBINED OPERATIONS; UNIVERSAL MACHINE TOOLS
- B23P2700/00—Indexing scheme relating to the articles being treated, e.g. manufactured, repaired, assembled, connected or other operations covered in the subgroups
- B23P2700/09—Heat pipes
Definitions
- the subject matter herein generally relates to a heat pipe and a device.
- Heat pipes such as mechanical equipment, electronic products, etc.
- a heat pipe may be included in such a device for dissipating heat from the heat-generating components.
- the heat pipe is divided into an evaporation section, an adiabatic section, and a condensation section connected in this order.
- a working fluid flows from the evaporation section, the adiabatic section, and into the condensation section to dissipate the heat.
- the amount of the working fluid in the heat pipe can be increased to increase the heat dissipation efficiency of the heat pipe.
- the working fluid evaporates in the evaporation section into gas form.
- the gas flows through the adiabatic section to the condensation section under the action of a small pressure difference, releases heat and condenses into liquid, and the liquid is taken back to the evaporation section.
- the working fluid in the evaporation section and the condensation section will collide in the adiabatic section, which may cause noise. Therefore, there is a room for improvement.
- FIG. 1 is a cross-sectional view of an embodiment of a tube for a heat pipe, including a first area, a second area, and a third area.
- FIG. 2 is a cross-sectional view of an embodiment of a bushing.
- FIG. 3 is a cross-sectional view showing an end of the tube of FIG. 1 reduced in diameter, and a first mandrel inserted into the tube, in one embodiment.
- FIG. 4 is a cross-sectional view showing a first capillary structure formed between the first area of the tube and the first mandrel of FIG. 3 .
- FIG. 5 is a cross-sectional view showing the first mandrel of FIG. 4 removed.
- FIG. 6 is a cross-sectional view showing the bushing of FIG. 2 inserted into the second area of the tube of FIG. 5 , and a second mandrel inserted into the bushing to form a capillary structure in the second area and the third area.
- FIG. 7 is a cross-sectional view showing the second mandrel of FIG. 6 removed.
- FIG. 8 is a cross-sectional view showing a working fluid injected into the capillary structure of the first area of FIG. 7 and then the tube sealed.
- FIG. 9 is a cross-sectional view showing an end of the tube of FIG. 1 narrowed, the bushing shown in FIG. 2 inserted into the tube in the second area, and a first mandrel inserted into the bushing, in another embodiment.
- FIG. 10 is a cross-sectional view showing a capillary structure formed in the first area, the second area, and the third area of an inner wall of the tube of FIG. 9 .
- FIG. 11 is a cross-sectional view showing the first mandrel of FIG. 10 removed.
- FIG. 12 is a cross-sectional view showing a working fluid injected into the capillary structure in the first area of FIG. 11 , the tube then sealed.
- FIG. 13 is a flowchart of an embodiment of a method for manufacturing the heat pipe.
- FIG. 14 is a flowchart of an embodiment of a method for manufacturing the capillary structure.
- FIG. 15 is a flowchart of another method for manufacturing the capillary structure.
- FIG. 16 is a diagrammatic view of an embodiment of a device.
- a heat pipe 100 is provided in an embodiment.
- the heat pipe 100 includes a tube 10 , a capillary structure 20 , a working fluid 50 , and a bushing 30 .
- the tube 10 is hollow.
- the capillary structure 20 is disposed on an inner wall of the tube 10 .
- the working fluid 50 is disposed in the capillary structure 20 .
- the bushing 30 is hollow and disposed on a surface of the capillary structure 20 away from the tube 10 .
- the heat pipe 100 is divided into an evaporation section 11 , an adiabatic section 12 , and a condensation section 13 , connected in this order.
- the capillary structure 20 is disposed at or in the evaporation section 11 , the adiabatic section 12 , and the condensation section 13 .
- the working fluid 50 is disposed in and infills the capillary structure 20 of the evaporation section 11 .
- the bushing 30 is disposed on a side of the capillary structure 20 of the adiabatic section 12 .
- the working fluid 50 of the evaporation section 11 collects heat and is thereby vaporized to form gas.
- the gas carrying heat flows through the bushing 30 of the adiabatic section 12 to the condensation section 13 .
- the gas is liquefied and transformed into liquid in the condensation section 13 .
- the liquid passes through the capillary structure 20 of the adiabatic section 12 back to the evaporation section 11 .
- the working fluid 50 in the heat pipe 100 is not completely vaporized, the non-vaporized working fluid 50 and the vaporized gas pass through the bushing 30 .
- the liquefied fluid in the condensation section 13 flows through the capillary structure 20 disposed outside the bushing 30 .
- the bushing 30 prevents the non-vaporized working fluid 50 and the liquefied working fluid 50 from mixing and colliding with each other, and noise is thus avoided.
- the bushing 30 allows the addition of more working fluid 50 , so heat dissipation performance and efficiency of the heat pipe 100 are improved.
- the tube 10 is made of metal material with good thermal conductivity, such as copper or aluminum.
- the shape of the tube 10 can be set as required.
- the tube 10 can be a round tube, a square tube, or a flat tube.
- the tube 10 is hollow, so that the working fluid 50 can circulate, absorb heat to evaporate into gas, and carry the heat.
- an inner wall of the tube 10 is smooth.
- the inner wall of the tube 10 can define grooves to facilitate the adsorption of liquid.
- the capillary structure 20 is made of metal, such as copper or aluminum.
- the capillary structure 20 is formed by metal powders, metal braided wires, or metal braided meshes.
- the capillary structure 20 is porous to facilitate the flow of the working fluid 50 .
- the bushing 30 is hollow to facilitate a passage of the gas.
- the bushing 30 is made of metal.
- the bushing 30 is spaced apart from the tube 10 .
- the bushing 30 and the tube 10 are connected by a capillary structure 20 of the adiabatic section 12 .
- the tube 10 is integrally formed or composed of multiple sections.
- the bushing 30 is tubular or sheet-shaped.
- a thickness of the capillary structure 20 can be set according to a required heat dissipation efficiency, volume, cost, and usage environment of the heat pipe 100 .
- An inner wall of the bushing 30 is smooth. Thus, a resistance of gas passing through the bushing 30 can be reduced, so that the gas carrying heat can pass through the bushing 30 quickly, thereby reducing a thermal resistance of the heat pipe 100 .
- an inner diameter D 1 of the capillary structure 20 of the evaporation section 11 is greater than or equal to an inner diameter D 2 of the bushing 30 and smaller than an outer diameter D 2 ′ of the bushing 30 .
- An inner diameter D 3 of the capillary structure 20 of the condensation section 13 is equal to an inner diameter D 2 of the bushing 30 .
- each of the inner diameter D 1 of the capillary structures 20 of the evaporation section 11 and the inner diameter D 3 of the capillary structures 20 of the condensation section 13 is equal to the inner diameter D 2 of the bushing 30 .
- a method for the manufacturing of the heat pipe 100 is provided in accordance with an embodiment.
- the method is provided by way of example, as there are a variety of ways to carry out the method. Referring to FIG. 13 , the method can begin at block 1 .
- a tube 10 and a bushing 30 are provided.
- An inner diameter of the tube 10 is greater than an outer diameter of the bushing 30 .
- the tube 10 comprises a first area I, a second area II, and a third area III connected in this order.
- the tube 10 and the bushing 30 are both hollow.
- a length of the tube 10 is greater than a length of the bushing 30 .
- the inner diameter of the tube 10 is larger than the outer diameter of the bushing 30 , so that the bushing 30 can be received in the tube 10 .
- the tube 10 and the bushing 30 are made of metal materials with good thermal conductivity, such as copper or aluminum.
- a capillary structure 20 is formed on the inner wall of the tube 10 in the first area I, the second area II, and the third area III.
- the bushing 30 is disposed on the surface of the capillary structure 20 in the second area II away from the tube 10 .
- block 2 can be carried out as follows.
- an end of the tube 10 disposed in the first area I is narrowed, and a first mandrel 41 is inserted into the tube 10 from the other end of the tube 10 .
- a diameter of the first mandrel 41 is smaller than the inner diameter of the tube 10 , so that the first mandrel 41 can be inserted into the tube 10 .
- An inner diameter of a narrowed end of the tube 10 in the first area I is smaller than the diameter of the first mandrel 41 , so that the first mandrel 41 can be inserted into the tube 10 from the other end of the tube 10 and then abut against one end of the tube 10 .
- a gap 60 a is formed between the narrowed end of the tube 10 and the first mandrel 41 .
- the gap 60 a can be infilled with metal material 26 .
- metal material 26 fills a space between the first area I and the first mandrel 41 .
- the metal material 26 surrounds the first mandrel 41 .
- the metal material 26 is sintered to form a first capillary structure 22 , and then the first mandrel 41 is removed.
- the metal material 26 is metal powders, metal braided wires, or metal braided meshes.
- the metal material 26 is made of metal, such as copper or aluminum.
- the metal material 26 is copper with certain toughness, rendering the metal material 26 easy to be processed and shaped.
- the metal material 26 is disposed in the gap 60 a formed between the tube 10 and the first mandrel 41 , and the metal material 26 surrounds the first mandrel 41 .
- a length of the metal material 26 filling the tube 10 and the first mandrel 41 is a quarter of a length of the tube 10 .
- the length of the metal material 26 filling the gap 60 a can be set as required.
- a sintering temperature is lower than a melting point of the metal, so that the metal material 26 is less than solid during the sintering process, and the metal material 26 forms a capillary structure 20 with pores.
- the metal material 26 is copper, and is sintering temperature from 900° C. to 1000° C., for example, 930° C., 960° C., or 990° C. After sintering, the metal material 26 forms a porous first capillary structure 22 , that is, the evaporation section 11 is thereby formed.
- the bushing 30 is inserted into the second area II.
- a second mandrel 42 is inserted into the bushing 30 , causing the second mandrel 42 to extend to the third area III.
- a metal material 26 is infilled in the space between the tube 10 and the bushing 30 , and between the tube 10 and the second mandrel 42 .
- the metal material 26 is sintered to become a second capillary structure 24 , and then the second mandrel 42 is removed.
- the bushing 30 is disposed in the second area II of the tube 10 .
- An outer diameter D 2 ′ of the bushing 30 is greater than the inner diameter D 1 of the first capillary structure 22 .
- One end of the bushing 30 abuts against one end of the first capillary structure 22 of the first area I.
- a gap 60 b is formed between the bushing 30 and the tube 10 of the second area II.
- the second mandrel 42 extends from one end of the bushing 30 to the third area III.
- a gap 60 c is formed between the second mandrel 42 and the tube 10 of the third area III.
- the metal material 26 is sintered after infilling the gap 60 b and the gap 60 c , and the sintered metal material 26 forms the second capillary structure 24 .
- one end of the second mandrel 42 extends from the end of the bushing 30 adjacent to the first area I the first area I, and further passes through the first capillary structure 22 to abut the end of the tube 10 .
- the first capillary structure 22 is integrally complete, for example, metal powders are not scattered.
- the inner diameter D 1 of the first capillary structure 22 is equal to the outer diameter D 2 ′ of the bushing 30 .
- the inner diameter D 1 of the capillary structure 20 of the first area I may be greater than or equal to the inner diameter D 2 of the bushing 30 , but smaller than the outer diameter D 2 ′ of the bushing 30 .
- the inner diameter D 3 of the capillary structure 20 of the third area III is equal to the inner diameter D 2 of the bushing 30 .
- a relationship between the capillary structure 20 and a content of the working fluid 50 can be adjusted by controlling a thickness and/or length of the capillary structure 20 in each area, a size of the bushing 30 (such as length, thickness, inner diameter, outer diameter, etc.), or the size relationship between the bushing 30 and the capillary structure 20 , etc.
- the heat dissipation efficiency of the heat pipe 100 is controlled to meet different heat dissipation requirements.
- the above two-step sintering process can adjust a position of the bushing 30 , thereby controlling the sintering quality of the heat pipe 100 .
- the relationship between the capillary structure 20 and the content of the working fluid 50 can also be controlled to adjust the heat dissipation efficiency of the heat pipe 100 .
- the bushing 30 may include multiple sections. Each section of the bushing 30 is tubular or sheet-shaped. In some embodiments, a sheet or ribbon of metal may be wound on the surface of the second mandrel 42 to form an annular bushing 30 .
- the tube 10 and the bushing 30 are first washed with chemical reagents, to remove oil on the surface of the tube 10 and the bushing 30 .
- the metal material 26 can adhere on the inner wall of the tube 10 and the bushing 30 more firmly.
- a working fluid 50 is injected into the capillary structure 20 of the first area I. Air is evacuated from the tube 10 to create vacuum in the tube 10 , and the tube 10 is sealed to obtain the heat pipe 100 .
- the tube 10 of the third area III is narrowed by an argon arc welding device for example.
- a metal oxide produced during welding can be reduced to metal in a high-temperature furnace filled with oxy-reducing gas. Since a thermal conductivity of the metal oxide is lower than that of the metal, the greater purity of metal instead of metal oxide improves the thermal conductivity of the heat pipe 100 .
- the working fluid 50 is injected into the capillary structure 20 of the first area I.
- the working fluid 50 is water, acetone, or ethanol.
- the vacuum treatment is performed, and then an argon arc welding device is used to seal the tube 10 of the first area I.
- the vacuum treatment improves the thermal conductivity of the heat pipe 100 .
- the steps of sintering and removing the first mandrel 41 may be omitted. That is, the evaporation section 11 (first area I), the adiabatic section 12 (second area II), and the condensation section 13 (third area III) can be formed at the same time through a single sintering process.
- the block of 2 can be carried out as follows.
- the tube 10 at one end of the first area I is narrowed and a first mandrel 41 a is inserted into the tube 10 from the other end of the tube 10 , causing the first mandrel 41 a to extend to the third area III.
- the bushing 30 is wrapped around the first mandrel 41 a and is disposed in the second area II.
- a metal material 26 is infilled into the space between the tube 10 and the bushing 30 , and between the tube 10 and the first mandrel 41 a .
- the metal material 26 is sintered to form the capillary structure 20 , and then the first mandrel 41 a is removed.
- the capillary structure 20 is formed by a single-step sintering process, which can reduce cost. Referring to FIG. 12 , each of the inner diameter D 1 of the capillary structures 20 of the first area I and the inner diameter D 3 of the capillary structures 20 of the third area III is equal to the inner diameter D 2 of the bushing 30 .
- the bushing 30 may include multiple sections wrapped on the first mandrel 41 a .
- a ribbon or sheet of metal may also be wound on the surface of the first mandrel 41 a , thereby forming an annular bushing 30 .
- the heat pipe 100 may further be bent, squashed, or rounded according to actual requirements.
- the heat pipe 100 can further be tested in order to remove defects.
- the test can include heating aging test, water bath test, heat dissipation efficiency test, appearance test, etc.
- the device 200 may be a mobile phone, a computer, a camera, etc., or may be other mechanical devices with a heat-generating characteristic.
- the device 200 comprises a heat dissipation assembly 210 , a heat-generating element 220 , and a heat pipe 100 .
- the heat pipe 100 is connected to the heat-generating element 220 and the heat dissipation assembly 210 .
- the heat-generating element 220 generates heat.
- the heat is transferred to the heat dissipation assembly 210 through the heat dissipation effect of the heat pipe 100 to further quickly dissipate the heat, so that the device 200 is maintained in a suitable temperature range.
- the heating-generating element 220 could be a battery, a CPU, or the like.
- the heat pipe 100 is provided with a bushing 30 in the adiabatic section 12 .
- the working fluid 50 in the heat pipe 100 is not completely vaporized, the non-vaporized working fluid 50 and the vaporized gas pass through the bushing 30 .
- the liquefied fluid in the condensation section 13 flows through the capillary structure 20 disposed outside the bushing 30 . Therefore, the bushing 30 insulates the flow path of the non-vaporized working fluid 50 and the liquefied working fluid 50 , the bushing 30 prevents the non-vaporized working fluid 50 and the liquefied working fluid 50 from mixing and colliding with each other. and noise is thus avoided.
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- Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- Life Sciences & Earth Sciences (AREA)
- Sustainable Development (AREA)
- Physics & Mathematics (AREA)
- Thermal Sciences (AREA)
- General Engineering & Computer Science (AREA)
- Cooling Or The Like Of Semiconductors Or Solid State Devices (AREA)
- Heat Treatment Of Articles (AREA)
- Bending Of Plates, Rods, And Pipes (AREA)
- Thermal Insulation (AREA)
Abstract
Description
- This is a divisional application of patent application Ser. No. 17/236,424 filed on Apr. 21, 2021, assigned to the same assignee, which is based on and claims priority to China Patent Application No. 202011484541.8 filed on Dec. 15, 2020, the contents of which are incorporated by reference herein.
- The subject matter herein generally relates to a heat pipe and a device.
- Devices using heat pipes, such as mechanical equipment, electronic products, etc., include heat-generating components. A heat pipe may be included in such a device for dissipating heat from the heat-generating components. The heat pipe is divided into an evaporation section, an adiabatic section, and a condensation section connected in this order. A working fluid flows from the evaporation section, the adiabatic section, and into the condensation section to dissipate the heat.
- The amount of the working fluid in the heat pipe can be increased to increase the heat dissipation efficiency of the heat pipe. When the heat pipe is in operation, the working fluid evaporates in the evaporation section into gas form. The gas flows through the adiabatic section to the condensation section under the action of a small pressure difference, releases heat and condenses into liquid, and the liquid is taken back to the evaporation section. However, with the increased amount of the working fluid, when the working fluid is not completely vaporized in the evaporation section, the working fluid in the evaporation section and the condensation section will collide in the adiabatic section, which may cause noise. Therefore, there is a room for improvement.
- Implementations of the present technology will now be described, by way of example only, with reference to the attached figures.
-
FIG. 1 is a cross-sectional view of an embodiment of a tube for a heat pipe, including a first area, a second area, and a third area. -
FIG. 2 is a cross-sectional view of an embodiment of a bushing. -
FIG. 3 is a cross-sectional view showing an end of the tube ofFIG. 1 reduced in diameter, and a first mandrel inserted into the tube, in one embodiment. -
FIG. 4 is a cross-sectional view showing a first capillary structure formed between the first area of the tube and the first mandrel ofFIG. 3 . -
FIG. 5 is a cross-sectional view showing the first mandrel ofFIG. 4 removed. -
FIG. 6 is a cross-sectional view showing the bushing ofFIG. 2 inserted into the second area of the tube ofFIG. 5 , and a second mandrel inserted into the bushing to form a capillary structure in the second area and the third area. -
FIG. 7 is a cross-sectional view showing the second mandrel ofFIG. 6 removed. -
FIG. 8 is a cross-sectional view showing a working fluid injected into the capillary structure of the first area ofFIG. 7 and then the tube sealed. -
FIG. 9 is a cross-sectional view showing an end of the tube ofFIG. 1 narrowed, the bushing shown inFIG. 2 inserted into the tube in the second area, and a first mandrel inserted into the bushing, in another embodiment. -
FIG. 10 is a cross-sectional view showing a capillary structure formed in the first area, the second area, and the third area of an inner wall of the tube ofFIG. 9 . -
FIG. 11 is a cross-sectional view showing the first mandrel ofFIG. 10 removed. -
FIG. 12 is a cross-sectional view showing a working fluid injected into the capillary structure in the first area ofFIG. 11 , the tube then sealed. -
FIG. 13 is a flowchart of an embodiment of a method for manufacturing the heat pipe. -
FIG. 14 is a flowchart of an embodiment of a method for manufacturing the capillary structure. -
FIG. 15 is a flowchart of another method for manufacturing the capillary structure. -
FIG. 16 is a diagrammatic view of an embodiment of a device. - It will be appreciated that for simplicity and clarity of illustration, where appropriate, reference numerals have been repeated among the different figures to indicate corresponding or analogous elements. In addition, numerous specific details are set forth in order to provide a thorough understanding of the embodiments described herein. However, it will be understood by those of ordinary skill in the art that the embodiments described herein can be practiced without these specific details. In other instances, methods, procedures, and components have not been described in detail so as not to obscure the related relevant feature being described. Also, the description is not to be considered as limiting the scope of the embodiments described herein. The drawings are not necessarily to scale, and the proportions of certain parts may be exaggerated to better illustrate details and features of the present disclosure.
- The term “comprising,” when utilized, means “including, but not necessarily limited to”; it specifically indicates open-ended inclusion or membership in the so-described combination, group, series, and the like.
- Referring to
FIG. 8 andFIG. 12 , aheat pipe 100 is provided in an embodiment. - The
heat pipe 100 includes atube 10, acapillary structure 20, a workingfluid 50, and a bushing 30. Thetube 10 is hollow. Thecapillary structure 20 is disposed on an inner wall of thetube 10. The workingfluid 50 is disposed in thecapillary structure 20. Thebushing 30 is hollow and disposed on a surface of thecapillary structure 20 away from thetube 10. Theheat pipe 100 is divided into anevaporation section 11, anadiabatic section 12, and acondensation section 13, connected in this order. Thecapillary structure 20 is disposed at or in theevaporation section 11, theadiabatic section 12, and thecondensation section 13. The workingfluid 50 is disposed in and infills thecapillary structure 20 of theevaporation section 11. Thebushing 30 is disposed on a side of thecapillary structure 20 of theadiabatic section 12. - During use, the working
fluid 50 of theevaporation section 11 collects heat and is thereby vaporized to form gas. The gas carrying heat flows through the bushing 30 of theadiabatic section 12 to thecondensation section 13. Upon losing heat, the gas is liquefied and transformed into liquid in thecondensation section 13. The liquid passes through thecapillary structure 20 of theadiabatic section 12 back to theevaporation section 11. When the workingfluid 50 in theheat pipe 100 is not completely vaporized, the non-vaporized workingfluid 50 and the vaporized gas pass through the bushing 30. The liquefied fluid in thecondensation section 13 flows through thecapillary structure 20 disposed outside thebushing 30. Therefore, the bushing 30 prevents the non-vaporized workingfluid 50 and the liquefied workingfluid 50 from mixing and colliding with each other, and noise is thus avoided. In addition, thebushing 30 allows the addition of more workingfluid 50, so heat dissipation performance and efficiency of theheat pipe 100 are improved. - The
tube 10 is made of metal material with good thermal conductivity, such as copper or aluminum. - The shape of the
tube 10 can be set as required. For example, thetube 10 can be a round tube, a square tube, or a flat tube. Thetube 10 is hollow, so that the workingfluid 50 can circulate, absorb heat to evaporate into gas, and carry the heat. - In an embodiment, an inner wall of the
tube 10 is smooth. In another embodiment, the inner wall of thetube 10 can define grooves to facilitate the adsorption of liquid. - The
capillary structure 20 is made of metal, such as copper or aluminum. Thecapillary structure 20 is formed by metal powders, metal braided wires, or metal braided meshes. Thecapillary structure 20 is porous to facilitate the flow of the workingfluid 50. - The
bushing 30 is hollow to facilitate a passage of the gas. Thebushing 30 is made of metal. Thebushing 30 is spaced apart from thetube 10. Thebushing 30 and thetube 10 are connected by acapillary structure 20 of theadiabatic section 12. - In an embodiment, the
tube 10 is integrally formed or composed of multiple sections. Thebushing 30 is tubular or sheet-shaped. - A thickness of the
capillary structure 20 can be set according to a required heat dissipation efficiency, volume, cost, and usage environment of theheat pipe 100. - An inner wall of the
bushing 30 is smooth. Thus, a resistance of gas passing through thebushing 30 can be reduced, so that the gas carrying heat can pass through thebushing 30 quickly, thereby reducing a thermal resistance of theheat pipe 100. - Referring to
FIG. 8 , in an embodiment, an inner diameter D1 of thecapillary structure 20 of theevaporation section 11 is greater than or equal to an inner diameter D2 of thebushing 30 and smaller than an outer diameter D2′ of thebushing 30. An inner diameter D3 of thecapillary structure 20 of thecondensation section 13 is equal to an inner diameter D2 of thebushing 30. - Referring to
FIG. 12 , in an embodiment, each of the inner diameter D1 of thecapillary structures 20 of theevaporation section 11 and the inner diameter D3 of thecapillary structures 20 of thecondensation section 13 is equal to the inner diameter D2 of thebushing 30. - Referring to
FIGS. 1 to 8 , a method for the manufacturing of theheat pipe 100 is provided in accordance with an embodiment. The method is provided by way of example, as there are a variety of ways to carry out the method. Referring toFIG. 13 , the method can begin atblock 1. - In
block 1, referring toFIGS. 1 to 2 , atube 10 and abushing 30 are provided. An inner diameter of thetube 10 is greater than an outer diameter of thebushing 30. Thetube 10 comprises a first area I, a second area II, and a third area III connected in this order. - The
tube 10 and thebushing 30 are both hollow. - A length of the
tube 10 is greater than a length of thebushing 30. The inner diameter of thetube 10 is larger than the outer diameter of thebushing 30, so that thebushing 30 can be received in thetube 10. - The
tube 10 and thebushing 30 are made of metal materials with good thermal conductivity, such as copper or aluminum. - In
block 2, referring toFIGS. 3 to 7 , acapillary structure 20 is formed on the inner wall of thetube 10 in the first area I, the second area II, and the third area III. Thebushing 30 is disposed on the surface of thecapillary structure 20 in the second area II away from thetube 10. - In an embodiment, referring to
FIG. 14 ,block 2 can be carried out as follows. - In
block 211, referring toFIG. 3 , an end of thetube 10 disposed in the first area I is narrowed, and afirst mandrel 41 is inserted into thetube 10 from the other end of thetube 10. - A diameter of the
first mandrel 41 is smaller than the inner diameter of thetube 10, so that thefirst mandrel 41 can be inserted into thetube 10. - An inner diameter of a narrowed end of the
tube 10 in the first area I is smaller than the diameter of thefirst mandrel 41, so that thefirst mandrel 41 can be inserted into thetube 10 from the other end of thetube 10 and then abut against one end of thetube 10. Agap 60 a is formed between the narrowed end of thetube 10 and thefirst mandrel 41. Thegap 60 a can be infilled withmetal material 26. - In
block 212, referring toFIGS. 4 to 5 ,metal material 26 fills a space between the first area I and thefirst mandrel 41. Themetal material 26 surrounds thefirst mandrel 41. Themetal material 26 is sintered to form afirst capillary structure 22, and then thefirst mandrel 41 is removed. - The
metal material 26 is metal powders, metal braided wires, or metal braided meshes. Themetal material 26 is made of metal, such as copper or aluminum. In an embodiment, themetal material 26 is copper with certain toughness, rendering themetal material 26 easy to be processed and shaped. - The
metal material 26 is disposed in thegap 60 a formed between thetube 10 and thefirst mandrel 41, and themetal material 26 surrounds thefirst mandrel 41. In an embodiment, along an extending direction of thetube 10, a length of themetal material 26 filling thetube 10 and thefirst mandrel 41 is a quarter of a length of thetube 10. In other embodiments, the length of themetal material 26 filling thegap 60 a can be set as required. - A sintering temperature is lower than a melting point of the metal, so that the
metal material 26 is less than solid during the sintering process, and themetal material 26 forms acapillary structure 20 with pores. In some embodiments, themetal material 26 is copper, and is sintering temperature from 900° C. to 1000° C., for example, 930° C., 960° C., or 990° C. After sintering, themetal material 26 forms a porous firstcapillary structure 22, that is, theevaporation section 11 is thereby formed. - In
block 213, referring toFIGS. 6 to 7 , thebushing 30 is inserted into the second area II. Asecond mandrel 42 is inserted into thebushing 30, causing thesecond mandrel 42 to extend to the third area III. Ametal material 26 is infilled in the space between thetube 10 and thebushing 30, and between thetube 10 and thesecond mandrel 42. Themetal material 26 is sintered to become asecond capillary structure 24, and then thesecond mandrel 42 is removed. - The
bushing 30 is disposed in the second area II of thetube 10. An outer diameter D2′ of thebushing 30 is greater than the inner diameter D1 of thefirst capillary structure 22. One end of thebushing 30 abuts against one end of thefirst capillary structure 22 of the first areaI. A gap 60 b is formed between thebushing 30 and thetube 10 of the second area II. Thesecond mandrel 42 extends from one end of thebushing 30 to the third area III. Agap 60 c is formed between thesecond mandrel 42 and thetube 10 of the third area III. Themetal material 26 is sintered after infilling thegap 60 b and thegap 60 c, and thesintered metal material 26 forms thesecond capillary structure 24. - In an embodiment, one end of the
second mandrel 42 extends from the end of thebushing 30 adjacent to the first area I the first area I, and further passes through thefirst capillary structure 22 to abut the end of thetube 10. Thus, during forming thesecond capillary structure 24, thefirst capillary structure 22 is integrally complete, for example, metal powders are not scattered. In an embodiment, the inner diameter D1 of thefirst capillary structure 22 is equal to the outer diameter D2′ of thebushing 30. - When the
capillary structure 20 is formed by the above two-step sintering process, the inner diameter D1 of thecapillary structure 20 of the first area I may be greater than or equal to the inner diameter D2 of thebushing 30, but smaller than the outer diameter D2′ of thebushing 30. The inner diameter D3 of thecapillary structure 20 of the third area III is equal to the inner diameter D2 of thebushing 30. That is, a relationship between thecapillary structure 20 and a content of the workingfluid 50 can be adjusted by controlling a thickness and/or length of thecapillary structure 20 in each area, a size of the bushing 30 (such as length, thickness, inner diameter, outer diameter, etc.), or the size relationship between thebushing 30 and thecapillary structure 20, etc. Thus, the heat dissipation efficiency of theheat pipe 100 is controlled to meet different heat dissipation requirements. - Since the
metal material 26 shrinks during the sintering process, the above two-step sintering process can adjust a position of thebushing 30, thereby controlling the sintering quality of theheat pipe 100. In addition, the relationship between thecapillary structure 20 and the content of the workingfluid 50 can also be controlled to adjust the heat dissipation efficiency of theheat pipe 100. - In some embodiments, the
bushing 30 may include multiple sections. Each section of thebushing 30 is tubular or sheet-shaped. In some embodiments, a sheet or ribbon of metal may be wound on the surface of thesecond mandrel 42 to form anannular bushing 30. - In some embodiments, before the
capillary structure 20 is formed on the inner wall of thetube 10, thetube 10 and thebushing 30 are first washed with chemical reagents, to remove oil on the surface of thetube 10 and thebushing 30. Thus, themetal material 26 can adhere on the inner wall of thetube 10 and thebushing 30 more firmly. - In
block 3, referring toFIG. 8 , a workingfluid 50 is injected into thecapillary structure 20 of the first area I. Air is evacuated from thetube 10 to create vacuum in thetube 10, and thetube 10 is sealed to obtain theheat pipe 100. - In an embodiment, the
tube 10 of the third area III is narrowed by an argon arc welding device for example. In some embodiment, a metal oxide produced during welding can be reduced to metal in a high-temperature furnace filled with oxy-reducing gas. Since a thermal conductivity of the metal oxide is lower than that of the metal, the greater purity of metal instead of metal oxide improves the thermal conductivity of theheat pipe 100. - The working
fluid 50 is injected into thecapillary structure 20 of the first area I. The workingfluid 50 is water, acetone, or ethanol. - After the working
fluid 50 is injected, the vacuum treatment is performed, and then an argon arc welding device is used to seal thetube 10 of the first area I. The vacuum treatment improves the thermal conductivity of theheat pipe 100. - Referring to
FIGS. 9 to 10 , in another embodiment, in the process of forming theheat pipe 100 a, before inserting thebushing 30 and thesecond mandrel 42 into thetube 10, the steps of sintering and removing thefirst mandrel 41 may be omitted. That is, the evaporation section 11 (first area I), the adiabatic section 12 (second area II), and the condensation section 13 (third area III) can be formed at the same time through a single sintering process. - In an embodiment, referring to
FIG. 15 , the block of 2 can be carried out as follows. - In
block 221, referring toFIG. 9 , thetube 10 at one end of the first area I is narrowed and afirst mandrel 41 a is inserted into thetube 10 from the other end of thetube 10, causing thefirst mandrel 41 a to extend to the third area III. Thebushing 30 is wrapped around thefirst mandrel 41 a and is disposed in the second area II. - In
block 222, referring toFIGS. 10 to 11 , ametal material 26 is infilled into the space between thetube 10 and thebushing 30, and between thetube 10 and thefirst mandrel 41 a. Themetal material 26 is sintered to form thecapillary structure 20, and then thefirst mandrel 41 a is removed. - Thus, the
capillary structure 20 is formed by a single-step sintering process, which can reduce cost. Referring toFIG. 12 , each of the inner diameter D1 of thecapillary structures 20 of the first area I and the inner diameter D3 of thecapillary structures 20 of the third area III is equal to the inner diameter D2 of thebushing 30. - In some embodiments, the
bushing 30 may include multiple sections wrapped on thefirst mandrel 41 a. In some embodiments, a ribbon or sheet of metal may also be wound on the surface of thefirst mandrel 41 a, thereby forming anannular bushing 30. - In some embodiments, the
heat pipe 100 may further be bent, squashed, or rounded according to actual requirements. - In some embodiments, after the
heat pipe 100 is formed, theheat pipe 100 can further be tested in order to remove defects. For example, the test can include heating aging test, water bath test, heat dissipation efficiency test, appearance test, etc. - Referring to
FIG. 16 , adevice 200 is provided. Thedevice 200 may be a mobile phone, a computer, a camera, etc., or may be other mechanical devices with a heat-generating characteristic. - The
device 200 comprises aheat dissipation assembly 210, a heat-generatingelement 220, and aheat pipe 100. Theheat pipe 100 is connected to the heat-generatingelement 220 and theheat dissipation assembly 210. The heat-generatingelement 220 generates heat. The heat is transferred to theheat dissipation assembly 210 through the heat dissipation effect of theheat pipe 100 to further quickly dissipate the heat, so that thedevice 200 is maintained in a suitable temperature range. - The heating-generating
element 220 could be a battery, a CPU, or the like. - The
heat pipe 100 is provided with abushing 30 in theadiabatic section 12. When the workingfluid 50 in theheat pipe 100 is not completely vaporized, the non-vaporized workingfluid 50 and the vaporized gas pass through thebushing 30. The liquefied fluid in thecondensation section 13 flows through thecapillary structure 20 disposed outside thebushing 30. Therefore, thebushing 30 insulates the flow path of the non-vaporized workingfluid 50 and the liquefied workingfluid 50, thebushing 30 prevents the non-vaporized workingfluid 50 and the liquefied workingfluid 50 from mixing and colliding with each other. and noise is thus avoided. - It is to be understood, even though information and advantages of the present embodiments have been set forth in the foregoing description, together with details of the structures and functions of the present embodiments, the disclosure is illustrative only; changes may be made in detail, especially in matters of shape, size, and arrangement of parts within the principles of the present embodiments to the full extent indicated by the plain meaning of the terms in which the appended claims are expressed.
Claims (12)
Priority Applications (1)
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US18/211,643 US20230332842A1 (en) | 2020-12-15 | 2023-06-20 | Heat pipe and device |
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CN202011484541.8A CN114636337A (en) | 2020-12-15 | 2020-12-15 | Heat pipe, and manufacturing method and device of heat pipe |
CN202011484541.8 | 2020-12-15 | ||
US17/236,424 US11725884B2 (en) | 2020-12-15 | 2021-04-21 | Heat pipe, method for manufacturing the same, and device |
US18/211,643 US20230332842A1 (en) | 2020-12-15 | 2023-06-20 | Heat pipe and device |
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US17/236,424 Division US11725884B2 (en) | 2020-12-15 | 2021-04-21 | Heat pipe, method for manufacturing the same, and device |
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US20230332842A1 true US20230332842A1 (en) | 2023-10-19 |
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US17/236,424 Active 2041-09-18 US11725884B2 (en) | 2020-12-15 | 2021-04-21 | Heat pipe, method for manufacturing the same, and device |
US18/211,643 Abandoned US20230332842A1 (en) | 2020-12-15 | 2023-06-20 | Heat pipe and device |
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US17/236,424 Active 2041-09-18 US11725884B2 (en) | 2020-12-15 | 2021-04-21 | Heat pipe, method for manufacturing the same, and device |
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US (2) | US11725884B2 (en) |
CN (1) | CN114636337A (en) |
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CN118242917B (en) * | 2024-05-28 | 2024-07-19 | 四川力泓电子科技有限公司 | Combined heat pipe, radiator and electronic equipment |
Citations (4)
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US20070193722A1 (en) * | 2006-02-18 | 2007-08-23 | Foxconn Technology Co., Ltd. | Heat pipe with capillary wick |
US20070235165A1 (en) * | 2006-04-07 | 2007-10-11 | Foxconn Technology Co., Ltd. | Heat pipe |
US20070251673A1 (en) * | 2006-04-28 | 2007-11-01 | Foxconn Technology Co., Ltd. | Heat pipe with non-metallic type wick structure |
US20140150995A1 (en) * | 2012-12-04 | 2014-06-05 | Foxconn Technology Co., Ltd. | Heat pipe and method for manufacturing the same |
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CN1696595A (en) * | 2004-05-11 | 2005-11-16 | 台达电子工业股份有限公司 | Heat pipe and manufacturing method thereof |
TWI260385B (en) * | 2005-01-21 | 2006-08-21 | Foxconn Tech Co Ltd | Sintered heat pipe and method for manufacturing the same |
CN100395505C (en) * | 2005-04-07 | 2008-06-18 | 富准精密工业(深圳)有限公司 | Sintering type heat pipe and manufacturing method thereof |
CN100437006C (en) * | 2005-08-12 | 2008-11-26 | 富准精密工业(深圳)有限公司 | Heat pipe and manufacturing method thereof |
CN100552365C (en) * | 2005-11-18 | 2009-10-21 | 富准精密工业(深圳)有限公司 | Heat pipe |
CN100573019C (en) * | 2006-03-03 | 2009-12-23 | 富准精密工业(深圳)有限公司 | Heat pipe |
CN100582638C (en) * | 2006-04-14 | 2010-01-20 | 富准精密工业(深圳)有限公司 | Heat pipe |
CN100513974C (en) * | 2006-05-19 | 2009-07-15 | 富准精密工业(深圳)有限公司 | Hot pipe |
TW201329412A (en) * | 2012-01-03 | 2013-07-16 | Yeh Chiang Technology Corp | An ultra-thin heat tube and manufacture method thereof |
CN103940274B (en) * | 2013-01-23 | 2016-08-10 | 中山伟强科技有限公司 | A kind of ultrathin heat pipe and manufacture method thereof |
CN203216351U (en) * | 2013-01-25 | 2013-09-25 | 泽鸿(广州)电子科技有限公司 | Gas-liquid split-flowing type heat pipe |
CN105698580B (en) * | 2014-11-28 | 2017-11-03 | 台达电子工业股份有限公司 | Heat pipe |
CN211782947U (en) * | 2019-11-28 | 2020-10-27 | 联想(北京)有限公司 | Heat pipe, heat sink, and electronic apparatus |
-
2020
- 2020-12-15 CN CN202011484541.8A patent/CN114636337A/en active Pending
- 2020-12-18 TW TW109145188A patent/TWI823040B/en active
-
2021
- 2021-04-21 US US17/236,424 patent/US11725884B2/en active Active
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2023
- 2023-06-20 US US18/211,643 patent/US20230332842A1/en not_active Abandoned
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US20070193722A1 (en) * | 2006-02-18 | 2007-08-23 | Foxconn Technology Co., Ltd. | Heat pipe with capillary wick |
US20070235165A1 (en) * | 2006-04-07 | 2007-10-11 | Foxconn Technology Co., Ltd. | Heat pipe |
US20070251673A1 (en) * | 2006-04-28 | 2007-11-01 | Foxconn Technology Co., Ltd. | Heat pipe with non-metallic type wick structure |
US20140150995A1 (en) * | 2012-12-04 | 2014-06-05 | Foxconn Technology Co., Ltd. | Heat pipe and method for manufacturing the same |
Also Published As
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US20220187025A1 (en) | 2022-06-16 |
TWI823040B (en) | 2023-11-21 |
US11725884B2 (en) | 2023-08-15 |
CN114636337A (en) | 2022-06-17 |
TW202229799A (en) | 2022-08-01 |
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