US20040137992A1 - Plunging sideshaft assembly with VL joint - Google Patents
Plunging sideshaft assembly with VL joint Download PDFInfo
- Publication number
- US20040137992A1 US20040137992A1 US10/695,058 US69505803A US2004137992A1 US 20040137992 A1 US20040137992 A1 US 20040137992A1 US 69505803 A US69505803 A US 69505803A US 2004137992 A1 US2004137992 A1 US 2004137992A1
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- United States
- Prior art keywords
- joint part
- face
- ball
- cage
- driveshaft according
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- 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
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- 239000002184 metal Substances 0.000 claims description 7
- 238000003466 welding Methods 0.000 claims 1
- 230000004048 modification Effects 0.000 description 4
- 238000012986 modification Methods 0.000 description 4
- 239000007787 solid Substances 0.000 description 3
- 238000006073 displacement reaction Methods 0.000 description 1
- 238000007789 sealing Methods 0.000 description 1
Images
Classifications
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16D—COUPLINGS FOR TRANSMITTING ROTATION; CLUTCHES; BRAKES
- F16D3/00—Yielding couplings, i.e. with means permitting movement between the connected parts during the drive
- F16D3/02—Yielding couplings, i.e. with means permitting movement between the connected parts during the drive adapted to specific functions
- F16D3/06—Yielding couplings, i.e. with means permitting movement between the connected parts during the drive adapted to specific functions specially adapted to allow axial displacement
- F16D3/065—Yielding couplings, i.e. with means permitting movement between the connected parts during the drive adapted to specific functions specially adapted to allow axial displacement by means of rolling elements
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16D—COUPLINGS FOR TRANSMITTING ROTATION; CLUTCHES; BRAKES
- F16D3/00—Yielding couplings, i.e. with means permitting movement between the connected parts during the drive
- F16D3/16—Universal joints in which flexibility is produced by means of pivots or sliding or rolling connecting parts
- F16D3/20—Universal joints in which flexibility is produced by means of pivots or sliding or rolling connecting parts one coupling part entering a sleeve of the other coupling part and connected thereto by sliding or rolling members
- F16D3/22—Universal joints in which flexibility is produced by means of pivots or sliding or rolling connecting parts one coupling part entering a sleeve of the other coupling part and connected thereto by sliding or rolling members the rolling members being balls, rollers, or the like, guided in grooves or sockets in both coupling parts
- F16D3/223—Universal joints in which flexibility is produced by means of pivots or sliding or rolling connecting parts one coupling part entering a sleeve of the other coupling part and connected thereto by sliding or rolling members the rolling members being balls, rollers, or the like, guided in grooves or sockets in both coupling parts the rolling members being guided in grooves in both coupling parts
- F16D3/226—Universal joints in which flexibility is produced by means of pivots or sliding or rolling connecting parts one coupling part entering a sleeve of the other coupling part and connected thereto by sliding or rolling members the rolling members being balls, rollers, or the like, guided in grooves or sockets in both coupling parts the rolling members being guided in grooves in both coupling parts the groove centre-lines in each coupling part lying on a cylinder co-axial with the respective coupling part
- F16D3/227—Universal joints in which flexibility is produced by means of pivots or sliding or rolling connecting parts one coupling part entering a sleeve of the other coupling part and connected thereto by sliding or rolling members the rolling members being balls, rollers, or the like, guided in grooves or sockets in both coupling parts the rolling members being guided in grooves in both coupling parts the groove centre-lines in each coupling part lying on a cylinder co-axial with the respective coupling part the joints being telescopic
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16D—COUPLINGS FOR TRANSMITTING ROTATION; CLUTCHES; BRAKES
- F16D3/00—Yielding couplings, i.e. with means permitting movement between the connected parts during the drive
- F16D3/16—Universal joints in which flexibility is produced by means of pivots or sliding or rolling connecting parts
- F16D3/20—Universal joints in which flexibility is produced by means of pivots or sliding or rolling connecting parts one coupling part entering a sleeve of the other coupling part and connected thereto by sliding or rolling members
- F16D3/22—Universal joints in which flexibility is produced by means of pivots or sliding or rolling connecting parts one coupling part entering a sleeve of the other coupling part and connected thereto by sliding or rolling members the rolling members being balls, rollers, or the like, guided in grooves or sockets in both coupling parts
- F16D3/223—Universal joints in which flexibility is produced by means of pivots or sliding or rolling connecting parts one coupling part entering a sleeve of the other coupling part and connected thereto by sliding or rolling members the rolling members being balls, rollers, or the like, guided in grooves or sockets in both coupling parts the rolling members being guided in grooves in both coupling parts
- F16D2003/22303—Details of ball cages
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16D—COUPLINGS FOR TRANSMITTING ROTATION; CLUTCHES; BRAKES
- F16D3/00—Yielding couplings, i.e. with means permitting movement between the connected parts during the drive
- F16D3/16—Universal joints in which flexibility is produced by means of pivots or sliding or rolling connecting parts
- F16D3/20—Universal joints in which flexibility is produced by means of pivots or sliding or rolling connecting parts one coupling part entering a sleeve of the other coupling part and connected thereto by sliding or rolling members
- F16D3/22—Universal joints in which flexibility is produced by means of pivots or sliding or rolling connecting parts one coupling part entering a sleeve of the other coupling part and connected thereto by sliding or rolling members the rolling members being balls, rollers, or the like, guided in grooves or sockets in both coupling parts
- F16D3/223—Universal joints in which flexibility is produced by means of pivots or sliding or rolling connecting parts one coupling part entering a sleeve of the other coupling part and connected thereto by sliding or rolling members the rolling members being balls, rollers, or the like, guided in grooves or sockets in both coupling parts the rolling members being guided in grooves in both coupling parts
- F16D2003/2232—Elements arranged in the hollow space between the end of the inner shaft and the outer joint member
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16D—COUPLINGS FOR TRANSMITTING ROTATION; CLUTCHES; BRAKES
- F16D2250/00—Manufacturing; Assembly
Definitions
- the invention relates to a driveshaft and, more particularly, concerns a sideshaft in a motor vehicle having two constant velocity universal joints and an intermediate shaft.
- the intermediate shaft comprises a longitudinal plunging unit including a sleeve with first ball grooves which extend axially, a journal with second ball grooves which extend axially, balls which are held in groups in pairs of grooves each comprising a first ball groove and a second ball groove, and a cage which holds the balls at a fixed distance from one another.
- the primary requirements for such sideshafts are easy plungeability, easy assembly and handling, and a quiet and long service life.
- the present invention is directed towards an improved plunging sideshaft assembly.
- the invention provides a driveshaft, such as a sideshaft in a motor vehicle, which comprises two fixed joints and a longitudinal plunging unit integrated into the intermediate shaft. At least one of the fixed joints, more particularly, the sideshaft joint at the differential end, is made to be particularly small and easy to assemble.
- one of the constant velocity universal joints comprises an outer joint part with first ball tracks which form a first angle of intersection with the joint axis, an inner joint part with second ball tracks which form a second angle of intersection with the joint axis, balls which run in pairs of tracks consisting of a first ball track and a second ball track, and a cage which holds the balls in a common plane, wherein the first and second angles of intersection of the ball tracks of a pair of tracks are identical in size and are positioned symmetrically relative to the joint axis and wherein the ball cage is axially fixed in the constant velocity joint.
- the ball cage comprises an inner cylindrical guiding face in which the inner joint part is held radially, and a spherical outer face which is held axially and radially between two annular stop faces.
- the fixed joint includes a ball cage having an inner cylindrical guiding face in which the inner joint part is held radially, and a spherical outer face which is held radially in an inner cylindrical guiding face of the outer joint part.
- the ball cage is supported in a first direction on a first annular stop face in the outer joint part, and the inner joint part is supported in a second axial direction on a second annular stop face in the ball cage.
- the fixed joint includes a ball cage including an inner cylindrical guiding face in which the inner joint part is held, and a spherical outer face which is radially held in an inner cylindrical guiding face of the outer joint part.
- the inner joint part is supported in a first axial direction on an annular stop face in the ball cage, and in a second axial direction, it is supported on a radial end face of the outer joint part.
- the inventive fixed joints essentially correspond to a VL plunging joint with intersecting pairs of tracks, but as a result of suitable stop faces in the joint, the axial plunging ability of the cage relative to the inner joint part and outer joint part, and thus relative to the joint as a whole, is fixed.
- Joints of this type are very lightweight and have a small diameter relative to the torque transmitting capacity and are thus advantageous as far as production is concerned.
- the second embodiment differs from a conventional VL plunging joint by modifications to the base part and the cage, and respectively, the cap part and the cage.
- the third embodiment only slight modifications relative to typical VL joints have to be carried out on the cage and the inner joint part.
- the solution in accordance with the various embodiments of the invention permits the production of lightweight, cost-effective shafts and, more particularly, sideshafts which, as a result of the integrated longitudinal plunging unit, feature low axial plunging forces and thus an advantageous NVH (noise-vibration-harshness) behavior.
- NVH noise-vibration-harshness
- FIGS. 1 to 7 show part of a driveshaft with a fixed joint and a longitudinal plunging unit in axial sections:
- FIG. 8 shows an inventive joint according to FIG. 3A in a partially dismantled condition:
- FIGS. 1 to 7 show a fixed joint 11 and a longitudinal plunging unit 41 forming part of an intermediate shaft.
- the fixed joint 11 comprises an outer joint part 12 having an annular member 13 containing first ball tracks 14 , a base part 15 (FIGS. 1, 2, 6 , and 7 ) and 29 (FIGS. 3, 4, 5 ) respectively, and an annular attaching cap 16 .
- the attaching cap 16 can be made of plate metal and serves to fix a convoluted boot for sealing the joint.
- the joint comprises an inner joint part 17 with second ball tracks 18 . Torque transmitting balls 19 are positioned in pairs of first ball tracks 14 and second ball tracks 18 .
- the first ball tracks 14 form a first angle of intersection with the joint axis A
- the second ball tracks 18 form a second angle of intersection with the joint axis A.
- the first and second angles of intersection of the ball tracks 14 , 18 of a pair of ball tracks are identical in size and are positioned symmetrically relative to the joint axis A.
- the balls 19 are held in a ball cage 20 which is provided with circumferentially distributed cage windows 21 .
- the ball cage 20 holds the balls 19 in a common plane E and is axially fixed in the constant velocity joint 11 .
- a shaft journal 22 is connected to the inner joint part 17 .
- the longitudinal plunging unit 41 comprises a sleeve 42 with first ball grooves 43 , a journal 44 with second ball grooves 45 , torque transmitting balls 46 running in pairs of first ball grooves 43 and second ball grooves 45 , as well as a ball cage 47 which holds the balls at a constant distance from one another.
- the journal 22 of the inner joint part is integral with the journal 44 of the axial plunging unit.
- the base 15 is provided in the form of a solid component with an adjoining joint journal 23 .
- the annular part 13 , the base part 15 and the attaching cap 16 are threaded to one another by threaded fasteners 24 .
- the inner joint part 17 is integrally connected to the shaft journal 22 .
- In the cage 20 there is provided an inner cylindrical guiding face 31 in which the inner joint part 17 is held radially by way of a spherical outer face 28 .
- the annular part 13 there is formed an inner cylindrical guiding face 25 and first annular stop face 26 against which the cage 20 is supported by way of its spherical outer face 39 in a first axial direction R 1 .
- a second annular stop face 27 which axially supports the cage 20 in a second axial direction R 2 .
- the axial fixing of the cage 20 in the outer joint part 12 also prevents the displacement of the inner joint part 17 relative to the cage 20 .
- FIG. 2 deviates from FIG. 1 in that the shaft journal 22 is inserted into the inner joint part 17 .
- the shaft journal 22 and the journal 44 integrally connected thereto are provided in the form of hollow journals.
- the inner joint part 17 does not comprise a purely spherical outer face, but an outer face 28 which includes a spherical portion 28 and two conical faces 37 , 38 .
- FIG. 3 any details identical to those in FIG. 1 have been given the same reference numbers. To that extent, reference is made to FIG. 1.
- the shaft journal 22 just like the journal 22 in FIG. 1, is produced so as to be integrally connected to the inner joint part 17 .
- FIG. 3 deviates from FIG. 1 in that the base part is provided in the form of a plate metal cover 29 in which, however, the second stop face 27 is arranged in the same way as in the embodiment according to FIG. 1.
- the connection of the outer joint part 12 with an attaching part has to be effected directly via the annular member 13 .
- FIG. 4 any details identical to those shown in FIG. 1 have been given the same reference numbers. To that extent, reference is made to the description of FIG. 1.
- the shaft journal 22 is provided in the form of a hollow journal, as in FIG. 2, but it is attached to the inner joint part 17 via a friction weld 30 .
- the shape of the inner joint part 17 is as described in connection with FIG. 2.
- the plate metal cover 29 has the shape as already described in connection with FIG. 3. To that extent, reference is made to the respective descriptions.
- FIG. 5 any details identical to those shown in FIG. 1 have been given the same reference numbers. To that extent, reference is made to the description of FIG. 1.
- the shaft journal 22 and the journal 44 have the same shape as that shown in FIG. 1.
- the plate metal cover 29 corresponds to the embodiment illustrated in FIGS. 3 and 4.
- the annular member 13 deviates from the above-mentioned embodiments in that it comprises an inner cylindrical guiding face 25 which only permits radial support for the spherical outer face 28 of the cage 20 .
- the cage 20 comprises an inner cylindrical guiding face 31 which radially supports the inner joint part 17 , as well as an annular stop face 32 on which the inner joint part 17 is radially supported in the first axial direction R 1 .
- the cage 20 is supported in the second axial direction R 2 on the annular second stop face 27 in the plate metal cover 29 .
- FIG. 6 any details identical to those shown in FIG. 1 have been given the same reference numbers. To that extent, reference is made to the description of FIG. 1.
- the shaft journal 22 and the journal 44 are designed as shown in FIG. 1.
- the inner guiding face 25 of the annular member 13 is purely cylindrical and serves only to provide radial guidance for the cage 20 .
- the attaching cap 16 is designed in such a way that it forms the first annular stop face 26 for the cage 20 on which the cage 20 is supported in a first axial direction R 1 .
- the base 15 is a solid part and produced so as to be integral with a joint journal 23 , but widened on the inside in such a way that it is not in contact with the cage 20 .
- the cage 20 itself comprises an inner cylindrical guiding face 31 and an annular stop face 33 which axially supports the inner joint part 17 in a second direction R 2 .
- the shaft journal 22 is produced so as to be integral with the inner joint part 17 and the journal 44 and designed in the same way as shown in FIG. 1.
- the annular member 13 comprises an inner purely cylindrical guiding face 25 which supports the cage in the radial direction only.
- the cage comprises an inner guiding face 31 and an annular stop face 32 which axially supports the inner joint part 17 in the first direction R 1 .
- the base 15 which is provided in the form of a solid part and is connected to the joint journal 23 is again widened in such a way that it has no contact with the cage 20 , as shown in FIG. 6.
- a central stop member 35 which is axially supported in the second direction R 2 on a stop face 36 in the base is inserted into the inner joint part 17 .
- FIG. 8 the front closing cap 16 has been removed, whereas all the remaining details correspond to those of FIG. 3.
- the first ball tracks 14 of the outer joint part form alternating first angles of intersection with the joint axis A.
- the second ball tracks 18 of the inner joint part form alternating second angles of intersection with the joint axis A.
- First and second ball tacks 14 , 18 associated with one another form angles of intersection which are identical in size and which are symmetric relative to the joint axis A.
- the first and second ball tracks associated with one another accommodate a ball 19 .
- the balls 19 are all held in a cage 20 .
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- Engineering & Computer Science (AREA)
- General Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- Shafts, Cranks, Connecting Bars, And Related Bearings (AREA)
- Pivots And Pivotal Connections (AREA)
Abstract
A driveshaft assembly having two CV joints and an intermediate shaft. One of the CV joints (11) includes an outer joint part (12) with first ball tracks (14), an inner joint part (17) with second ball tracks (18), and balls (19) held in a common plane by a cage (20). First and second angles of intersection of the ball tracks (14, 18) of a pair of tracks are identical in size and are positioned symmetrically relative to the joint axis. The ball cage (20) is axially fixed in the constant velocity joint. The intermediate shaft includes a longitudinal plunging unit (41) having a sleeve (42) with first ball grooves (43) which extend axially, a journal (44) with second ball grooves (45) which extend axially, balls (46) which are held in a cage (47) in groups in pairs of the first and second ball grooves (43, 45).
Description
- The invention relates to a driveshaft and, more particularly, concerns a sideshaft in a motor vehicle having two constant velocity universal joints and an intermediate shaft. The intermediate shaft comprises a longitudinal plunging unit including a sleeve with first ball grooves which extend axially, a journal with second ball grooves which extend axially, balls which are held in groups in pairs of grooves each comprising a first ball groove and a second ball groove, and a cage which holds the balls at a fixed distance from one another. The primary requirements for such sideshafts are easy plungeability, easy assembly and handling, and a quiet and long service life. The present invention is directed towards an improved plunging sideshaft assembly.
- The invention provides a driveshaft, such as a sideshaft in a motor vehicle, which comprises two fixed joints and a longitudinal plunging unit integrated into the intermediate shaft. At least one of the fixed joints, more particularly, the sideshaft joint at the differential end, is made to be particularly small and easy to assemble. According to one solution, one of the constant velocity universal joints comprises an outer joint part with first ball tracks which form a first angle of intersection with the joint axis, an inner joint part with second ball tracks which form a second angle of intersection with the joint axis, balls which run in pairs of tracks consisting of a first ball track and a second ball track, and a cage which holds the balls in a common plane, wherein the first and second angles of intersection of the ball tracks of a pair of tracks are identical in size and are positioned symmetrically relative to the joint axis and wherein the ball cage is axially fixed in the constant velocity joint.
- In one embodiment, the ball cage comprises an inner cylindrical guiding face in which the inner joint part is held radially, and a spherical outer face which is held axially and radially between two annular stop faces.
- In a second embodiment, the fixed joint includes a ball cage having an inner cylindrical guiding face in which the inner joint part is held radially, and a spherical outer face which is held radially in an inner cylindrical guiding face of the outer joint part. The ball cage is supported in a first direction on a first annular stop face in the outer joint part, and the inner joint part is supported in a second axial direction on a second annular stop face in the ball cage.
- In a third embodiment, the fixed joint includes a ball cage including an inner cylindrical guiding face in which the inner joint part is held, and a spherical outer face which is radially held in an inner cylindrical guiding face of the outer joint part. The inner joint part is supported in a first axial direction on an annular stop face in the ball cage, and in a second axial direction, it is supported on a radial end face of the outer joint part.
- The inventive fixed joints essentially correspond to a VL plunging joint with intersecting pairs of tracks, but as a result of suitable stop faces in the joint, the axial plunging ability of the cage relative to the inner joint part and outer joint part, and thus relative to the joint as a whole, is fixed. Joints of this type are very lightweight and have a small diameter relative to the torque transmitting capacity and are thus advantageous as far as production is concerned. To achieve the axial non-plungeability, in accordance with the first embodiment mentioned above, only the base part and the attaching cap part require slight modification relative to the configuration of a typical VL plunging joint. According to the second embodiment, it differs from a conventional VL plunging joint by modifications to the base part and the cage, and respectively, the cap part and the cage. Finally, according to the third embodiment, only slight modifications relative to typical VL joints have to be carried out on the cage and the inner joint part.
- The solution in accordance with the various embodiments of the invention permits the production of lightweight, cost-effective shafts and, more particularly, sideshafts which, as a result of the integrated longitudinal plunging unit, feature low axial plunging forces and thus an advantageous NVH (noise-vibration-harshness) behavior.
- Other advantages and features of the invention will also become apparent upon reading the following detailed description and appended claims, and upon reference to the accompanying drawings.
- For a more complete understanding of this invention, reference should now be made to the embodiments illustrated in greater detail in the accompanying drawings and described below by way of examples of the invention.
- FIGS.1 to 7, in seven different embodiments, show part of a driveshaft with a fixed joint and a longitudinal plunging unit in axial sections:
- A) Through a plane which intersects two torque transmitting balls;
- B) through a plane which is positioned between balls of the fixed joint.
- FIG. 8 shows an inventive joint according to FIG. 3A in a partially dismantled condition:
- A) In an axial view; and
- B) in a longitudinal section through a plane B-B which intersects two balls.
- The common characteristics of FIGS.1 to 7 will first be described jointly. The figures each show a
fixed joint 11 and alongitudinal plunging unit 41 forming part of an intermediate shaft. Thefixed joint 11 comprises anouter joint part 12 having anannular member 13 containingfirst ball tracks 14, a base part 15 (FIGS. 1, 2, 6, and 7) and 29 (FIGS. 3, 4, 5) respectively, and an annular attachingcap 16. The attachingcap 16 can be made of plate metal and serves to fix a convoluted boot for sealing the joint. Furthermore, the joint comprises an innerjoint part 17 withsecond ball tracks 18. Torque transmittingballs 19 are positioned in pairs offirst ball tracks 14 andsecond ball tracks 18. The first ball tracks 14 form a first angle of intersection with the joint axis A, and the second ball tracks 18 form a second angle of intersection with the joint axis A. The first and second angles of intersection of theball tracks balls 19 are held in aball cage 20 which is provided with circumferentially distributedcage windows 21. Theball cage 20 holds theballs 19 in a common plane E and is axially fixed in theconstant velocity joint 11. Ashaft journal 22 is connected to the innerjoint part 17. - The
longitudinal plunging unit 41 comprises asleeve 42 withfirst ball grooves 43, ajournal 44 withsecond ball grooves 45,torque transmitting balls 46 running in pairs offirst ball grooves 43 andsecond ball grooves 45, as well as aball cage 47 which holds the balls at a constant distance from one another. Thejournal 22 of the inner joint part is integral with thejournal 44 of the axial plunging unit. - In FIG. 1, the
base 15 is provided in the form of a solid component with an adjoiningjoint journal 23. Theannular part 13, thebase part 15 and the attachingcap 16 are threaded to one another by threadedfasteners 24. The innerjoint part 17 is integrally connected to theshaft journal 22. In thecage 20, there is provided an inner cylindrical guidingface 31 in which theinner joint part 17 is held radially by way of a sphericalouter face 28. In theannular part 13, there is formed an inner cylindrical guidingface 25 and firstannular stop face 26 against which thecage 20 is supported by way of its sphericalouter face 39 in a first axial direction R1. In thebase part 15, there is formed a secondannular stop face 27 which axially supports thecage 20 in a second axial direction R2. As thefirst ball tracks 14 and thesecond ball tracks 18 intersect one another in pairs in space, the axial fixing of thecage 20 in theouter joint part 12 also prevents the displacement of the innerjoint part 17 relative to thecage 20. - In FIG. 2, any details identical to those shown in FIG. 1 have been given the same reference numbers. To that extent, reference is made to the description of FIG. 1. FIG. 2 deviates from FIG. 1 in that the
shaft journal 22 is inserted into the innerjoint part 17. In addition, theshaft journal 22 and thejournal 44 integrally connected thereto are provided in the form of hollow journals. The innerjoint part 17 does not comprise a purely spherical outer face, but anouter face 28 which includes aspherical portion 28 and twoconical faces - In FIG. 3, any details identical to those in FIG. 1 have been given the same reference numbers. To that extent, reference is made to FIG. 1. The
shaft journal 22, just like thejournal 22 in FIG. 1, is produced so as to be integrally connected to the innerjoint part 17. FIG. 3 deviates from FIG. 1 in that the base part is provided in the form of aplate metal cover 29 in which, however, thesecond stop face 27 is arranged in the same way as in the embodiment according to FIG. 1. The connection of the outerjoint part 12 with an attaching part has to be effected directly via theannular member 13. - In FIG. 4, any details identical to those shown in FIG. 1 have been given the same reference numbers. To that extent, reference is made to the description of FIG. 1. The
shaft journal 22 is provided in the form of a hollow journal, as in FIG. 2, but it is attached to the innerjoint part 17 via a friction weld 30. The shape of the innerjoint part 17 is as described in connection with FIG. 2. Theplate metal cover 29 has the shape as already described in connection with FIG. 3. To that extent, reference is made to the respective descriptions. - In FIG. 5, any details identical to those shown in FIG. 1 have been given the same reference numbers. To that extent, reference is made to the description of FIG. 1. The
shaft journal 22 and thejournal 44 have the same shape as that shown in FIG. 1. Theplate metal cover 29 corresponds to the embodiment illustrated in FIGS. 3 and 4. Theannular member 13 deviates from the above-mentioned embodiments in that it comprises an innercylindrical guiding face 25 which only permits radial support for the sphericalouter face 28 of thecage 20. Instead, thecage 20 comprises an innercylindrical guiding face 31 which radially supports the innerjoint part 17, as well as anannular stop face 32 on which the innerjoint part 17 is radially supported in the first axial direction R1. In addition, as in the preceding embodiments, thecage 20 is supported in the second axial direction R2 on the annularsecond stop face 27 in theplate metal cover 29. - In FIG. 6, any details identical to those shown in FIG. 1 have been given the same reference numbers. To that extent, reference is made to the description of FIG. 1. In particular, the
shaft journal 22 and thejournal 44 are designed as shown in FIG. 1. As in the previous FIG. 5, in this case, too, the inner guidingface 25 of theannular member 13 is purely cylindrical and serves only to provide radial guidance for thecage 20. The attachingcap 16 is designed in such a way that it forms the firstannular stop face 26 for thecage 20 on which thecage 20 is supported in a first axial direction R1. Thebase 15 is a solid part and produced so as to be integral with ajoint journal 23, but widened on the inside in such a way that it is not in contact with thecage 20. Instead, thecage 20 itself comprises an innercylindrical guiding face 31 and an annular stop face 33 which axially supports the innerjoint part 17 in a second direction R2. - In FIG. 7, any details identical to those shown in FIG. 1 have been given the same reference numbers. To that extent, reference is made to the description of FIG. 1. In particular, the
shaft journal 22 is produced so as to be integral with the innerjoint part 17 and thejournal 44 and designed in the same way as shown in FIG. 1. Theannular member 13 comprises an inner purely cylindrical guidingface 25 which supports the cage in the radial direction only. As in FIG. 5, the cage comprises aninner guiding face 31 and anannular stop face 32 which axially supports the innerjoint part 17 in the first direction R1. The base 15 which is provided in the form of a solid part and is connected to thejoint journal 23 is again widened in such a way that it has no contact with thecage 20, as shown in FIG. 6. Acentral stop member 35 which is axially supported in the second direction R2 on a stop face 36 in the base is inserted into the innerjoint part 17. - In FIG. 8, the
front closing cap 16 has been removed, whereas all the remaining details correspond to those of FIG. 3. In the plan view of theannular member 13 it can be seen that the first ball tracks 14 of the outer joint part form alternating first angles of intersection with the joint axis A. In the plan view of the innerjoint part 17 it can be seen that the second ball tracks 18 of the inner joint part form alternating second angles of intersection with the joint axis A. First and second ball tacks 14, 18 associated with one another form angles of intersection which are identical in size and which are symmetric relative to the joint axis A. The first and second ball tracks associated with one another accommodate aball 19. Theballs 19 are all held in acage 20. - While the invention has been described in connection with several embodiments, it should be understood that the invention is not limited to those embodiments. Rather, the invention covers all alternatives, modifications, and equivalents as may be included in the spirit and scope of the appended claims.
Claims (17)
1. A driveshaft comprising two constant velocity universal joints and an intermediate shaft;
one of the constant velocity universal joints (11) comprises an outer joint part (12) with first ball tracks (14) which form a first angle of intersection with the joint axis (A), an inner joint part (17) with second ball tracks (18) which form a second angle of intersection with the joint axis (A), balls (19) which run in pairs of tracks comprising a first ball track (14) and a second ball track (18), and a cage (20) which holds the balls (19) in a common plane (E), wherein the first and second angles of intersection of the ball tracks (14, 18) of a pair of tracks are identical in size and are positioned symmetrically relative to the joint axis (A) and wherein the ball cage (20) is axially fixed in the constant velocity joint;
the intermediate shaft comprises a longitudinal plunging unit (41) having a sleeve (42) with first ball grooves (43) which extend axially, a journal (44) with second ball grooves (45) which extend axially, balls (46) which are held in groups in pairs of grooves each comprising a first ball groove (43) and a second ball groove (45), and a cage (47) which holds the balls (46) at a fixed distance from one another.
2. A driveshaft according to claim 1 , wherein the ball cage (20) comprises an inner cylindrical guiding face (31) in which the inner joint part (17) is held radially, and a spherical outer face (39) which is held axially and radially between first and second annular stop faces (26, 27) of the outer joint part (12).
3. A driveshaft according to claim 1 , wherein the ball cage (20) comprises an inner cylindrical guiding face (31) in which the inner joint part (17) is held radially, and a spherical outer face (39) which is held radially in an inner cylindrical guiding face (25) of the outer joint part (12), wherein the inner joint part (17) is supported in a first direction (R1) on an annular stop face (32) in the ball cage and wherein the ball cage (20) is supported in a second axial direction (R2) on a second annular stop face (27) in the outer joint part (12).
4. A driveshaft according to claim 1 , wherein the ball cage (20) comprises an inner cylindrical guiding face (31) in which the inner joint part (17) is held radially, and a spherical outer face (39) which is held radially in an inner cylindrical guiding face (25) of the outer joint part (12), wherein the ball cage is supported in a first axial direction (R1) on a first annular stop face (26) in the outer joint part (12) and wherein the inner joint part (17) is supported in a second axial direction (R2) on a second annular stop face (33) in the ball cage (20).
5. A driveshaft according to claim 1 , wherein the ball cage (20) comprises an inner cylindrical guiding face (31) in which the inner joint part (17) is held radially, and a spherical outer face (39) which is held radially in an inner cylindrical guiding face (25) of the outer joint part (12), wherein the inner joint part (17) is supported in a first axial direction (R1) on an annular stop face (32) in the ball cage and in a second axial direction (R2) on a radial end face (36) of the outer joint part (12).
6. A driveshaft according to claim 2 , wherein the outer joint part (12) comprises an annular part (13) forming the first stop face (26) and an inner cylindrical guiding face (25) for supporting an outer face of the ball cage (20), and a base part (15) in which there is formed the second stop face (27).
7. A driveshaft according to claim 6 , wherein the base part (15) is a plate metal cover (29).
8. A driveshaft according to claim 2 , wherein the outer joint part (12) comprises an annular part (13) in which there is formed an inner cylindrical guiding face (25) for supporting an outer face of the ball cage (20), an attaching cap (16) in which there is formed the first stop face (26), and a base part (15) in which there is formed the second stop face (27).
9. A driveshaft according to claim 8 , wherein the base part (15) is a plate metal cover (29).
10. A driveshaft according to claim 3 , wherein the outer joint part (12) comprises an annular part (13) in which there is formed the inner cylindrical guiding face (25), and a base part (15) in which there is formed the second stop face (27).
11. A driveshaft according to claim 4 , wherein the outer joint part (12) comprises an annular part (13) in which there is formed the inner cylindrical guiding face (25), and an attaching cap (16) in which there is formed the first stop face (26).
12. A driveshaft according to claim 2 , wherein the inner joint part (17) comprises a spherical outer face (28).
13. A driveshaft according to claim 2 , wherein an outer face of the inner joint part comprises a spherical portion (28) and two conical end regions (37, 38).
14. A driveshaft according to claim 1 , wherein the journal (44) and inner joint part (17) are integrally formed.
15. A driveshaft according to claim 1 , wherein the journal (44) is hollow.
16. A driveshaft according to claim 15 , wherein the journal (44) is fixed to the inner joint part (17) by friction welding.
17. A driveshaft according to claim 5 , wherein the inner joint part (17) includes a central stop member (35) for acting against the radial end face (36) of the outer joint part (12).
Priority Applications (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US11/482,223 US7232373B2 (en) | 2002-10-30 | 2006-07-07 | Plunging sideshaft assembly with joint |
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
DE10250419.9 | 2002-10-30 | ||
DE10250419A DE10250419C5 (en) | 2002-10-30 | 2002-10-30 | Side shaft arrangement with VL joint and sliding compensation |
Related Child Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US11/482,223 Continuation US7232373B2 (en) | 2002-10-30 | 2006-07-07 | Plunging sideshaft assembly with joint |
Publications (1)
Publication Number | Publication Date |
---|---|
US20040137992A1 true US20040137992A1 (en) | 2004-07-15 |
Family
ID=32403657
Family Applications (2)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US10/695,058 Abandoned US20040137992A1 (en) | 2002-10-30 | 2003-10-28 | Plunging sideshaft assembly with VL joint |
US11/482,223 Expired - Fee Related US7232373B2 (en) | 2002-10-30 | 2006-07-07 | Plunging sideshaft assembly with joint |
Family Applications After (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US11/482,223 Expired - Fee Related US7232373B2 (en) | 2002-10-30 | 2006-07-07 | Plunging sideshaft assembly with joint |
Country Status (3)
Country | Link |
---|---|
US (2) | US20040137992A1 (en) |
JP (1) | JP2004150633A (en) |
DE (1) | DE10250419C5 (en) |
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US20060217208A1 (en) * | 2005-03-24 | 2006-09-28 | Worman William E Jr | Propshaft with constant velocity joint attachment |
US20070259724A1 (en) * | 2006-05-04 | 2007-11-08 | Alexander Pohl | Ball Cage For A Constant Velocity Universal Joint And Process Of Producing A Ball Cage |
US20070287545A1 (en) * | 2004-08-16 | 2007-12-13 | Arne Berger | Longitudinal Plunging Unit with Cage Securing Means |
US8118683B2 (en) | 2005-09-27 | 2012-02-21 | Shaft-Form-Engineering Gmbh | Joint shaft and roller displacement UNIT THEREFOR |
WO2018016833A1 (en) * | 2016-07-19 | 2018-01-25 | 이래에이엠에스 주식회사 | Plunging assembly of drive shaft and drive shaft including same |
WO2019050054A1 (en) * | 2017-09-05 | 2019-03-14 | 이래에이엠에스 주식회사 | Drive shaft for vehicle |
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DE102004039642B3 (en) * | 2004-08-16 | 2006-06-14 | Gkn Driveline Deutschland Gmbh | Käfiganschlag on profile pin a longitudinal displacement unit |
JP2007092964A (en) * | 2005-09-30 | 2007-04-12 | Ntn Corp | Cross groove type constant velocity universal joint |
JP2008232292A (en) * | 2007-03-20 | 2008-10-02 | Ntn Corp | Constant velocity universal joint |
CN101949417A (en) * | 2010-09-29 | 2011-01-19 | 浙江凯迪汽车部件工业有限公司 | Improved structure of ball cage assembly in constant velocity universal joint |
US10184524B2 (en) | 2014-04-04 | 2019-01-22 | Dana Automotive Systems Group, Llc | Constant velocity joint assembly |
CN105620707A (en) * | 2015-12-30 | 2016-06-01 | 浙江海洋学院 | Shaft for ship |
KR20180103970A (en) | 2016-02-10 | 2018-09-19 | 데이나 오토모티브 시스템즈 그룹 엘엘씨 | Direct pinion mount constant velocity joint |
US11156252B2 (en) | 2016-05-10 | 2021-10-26 | Dana Automotive Systems Group, Llc | Boot assembly for a constant velocity joint |
EP3601826A1 (en) | 2017-03-31 | 2020-02-05 | Dana Automotive Systems Group, LLC | A constant velocity joint assembly |
DE102017210135B4 (en) | 2017-06-16 | 2021-02-11 | Volkswagen Aktiengesellschaft | Ball cage for VL and CG joints |
KR20250020089A (en) * | 2023-08-03 | 2025-02-11 | 현대위아 주식회사 | Power transmitting apparatus |
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Also Published As
Publication number | Publication date |
---|---|
US7232373B2 (en) | 2007-06-19 |
US20060252558A1 (en) | 2006-11-09 |
JP2004150633A (en) | 2004-05-27 |
DE10250419B3 (en) | 2004-08-12 |
DE10250419C5 (en) | 2009-04-23 |
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Legal Events
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Owner name: GKN AUTOMOTIVE GMBH, GERMANY Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNORS:HILDEBRANDT, WOLFGANG;WECKERLING, THOMAS;MAUCHER, STEPHAN;AND OTHERS;REEL/FRAME:014424/0317;SIGNING DATES FROM 20031028 TO 20031123 |
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STCB | Information on status: application discontinuation |
Free format text: ABANDONED -- FAILURE TO PAY ISSUE FEE |