GEAR SHIFTING COUPLING FOR A VEHICLE TRANSMISSION
20200309204 · 2020-10-01
Assignee
Inventors
Cpc classification
F16D23/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2023/0656
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2300/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16D23/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A gear shifting coupling for a vehicle transmission, having a transmission shaft having a shaft-fixed synchronizer body, on the outer gear teeth of which a sliding sleeve is axially guided using its inner gear teeth, wherein the sliding sleeve is brought into toothed engagement with outer gear teeth of a floating gear wheel in an axial movement in a shifting state, to establish a torque transmission between the transmission shaft and the floating gear wheel and wherein the toothed engagement between the sliding sleeve inner gear teeth and the floating gear wheel outer gear teeth is subject to play, specifically with a tooth flank play.
Claims
1-12. (canceled)
13. A gear shifting coupling for a vehicle transmission, comprising: a transmission shaft having a shaft-fixed synchronizer bod, on an outer gear teeth of which a sliding sleeve is axially guided using its inner gear teeth, wherein the sliding sleeve is brought into toothed engagement with outer gear teeth of a floating gear wheel in an axial movement in a shifting state, to establish a torque transmission between the transmission shaft and the floating gear wheel, and wherein the toothed engagement between the sliding sleeve inner gear teeth and the floating gear wheel outer gear teeth is subject to play, specifically with a tooth flank play and wherein during the torque transmission, the tooth flanks facing toward one another of the inner gear teeth of the sliding sleeve and the outer gear teeth of the floating gear wheel strike against one another while consuming the tooth flank play wherein at least one damping spring by which a striking movement of the tooth flanks facing toward one another is damped, acts between the sliding sleeve and the floating gear wheel.
14. The gear shifting coupling as claimed in claim 13, wherein the damping spring is attached to the inner gear teeth of the sliding sleeve, and/or in that the damping spring acts in the shifting state in a circumferential direction with opposing spring forces on opposing tooth flanks of two adjacent teeth of the outer gear teeth of the floating gear wheel, and in that during a torque transmission, the tooth flanks facing toward one another of the sliding sleeve inner gear teeth and the floating gear wheel outer gear teeth strike while building up an elastic spring restoring force, specifically with a damped or braked striking movement.
15. The gear shifting coupling as claimed in claim 13, wherein the damping spring comprises at least one leaf spring and/or in that the damping spring presses with a spring flank in elastically yielding manner against a tooth flank facing toward the leaf spring of the floating gear wheel outer gear teeth.
16. The gear shifting coupling as claimed in claim 13, wherein the damping spring comprises two leaf springs, the tooth flanks of which press in elastically yielding manner on tooth flanks, facing toward one another, of the outer gear teeth of the floating gear wheel.
17. The gear shifting coupling as claimed in claim 13, wherein to provide an installation space for the damping spring in the inner gear teeth of the sliding sleeve, at least one tooth is omitted and the damping spring is arranged in place thereof.
18. The gear shifting coupling as claimed in claim 13, wherein, in a neutral position, the sliding sleeve is out of toothed engagement with the floating gear wheel outer gear teeth and in that in the neutral position, the damping spring is nonfunctional.
19. The gear shifting coupling as claimed in claim 13, wherein the damping spring is spaced apart by a free radial offset from a tooth base of the floating gear wheel outer gear teeth.
20. The gear shifting coupling as claimed in claim 13, wherein the damping spring comprises a spring flank, which is supported in the shifting state in elastically yielding manner on a tooth base between two adjacent teeth of the floating gear wheel outer gear teeth.
21. The gear shifting coupling as claimed in claim 13, wherein in the shifting state and in the case of load-free gear shifting coupling, the damping spring centers the sliding sleeve and the floating gear wheel in relation to one another, so that all tooth flanks of the sliding sleeve inner gear teeth and the floating gear outer gear teeth are spaced apart from one another via a centering play.
22. The gear shifting coupling as claimed in claim 13, wherein the vehicle transmission is a dual-clutch transmission, in which, in the driving mode, a first interrupting clutch is shifted to transmit force and a driving gear is engaged, the gear wheel set of which is loadbearing for a torque transmission, and also a further driving gear is preset, the gear wheel set of which is still load-free, and in that during a shifting procedure, the first interrupting clutch is disengaged and a second interrupting clutch is shifted to transmit force, whereby the gear wheel set of the preselected driving gear is loadbearing for a torque transmission.
23. The gear shifting coupling as claimed in claim 13, wherein the sliding sleeve is produced from a linear band strip, which comprises gear teeth forming the inner gear teeth on one flat side, wherein the band strip is formed into a ring shape, i.e., bent into a round shape, and is joined together on its end-face band strip ends and in that the gear teeth forming the inner gear teeth merge in the direction toward at least one band strip end into a gear teeth-free, smooth-surfaced band section, which terminates directly at the band strip end, and in that the gear teeth-free, smooth-surfaced band section provides the installation space for the damping spring.
24. A method for producing a sliding sleeve for a gear shifting coupling as according to claim 13, comprising the following steps: producing a linear band strip having gear teeth forming the inner gear teeth on one flat side and at least one longitudinal groove forming the outer groove on the opposing flat side, and forming the linear band strip into a closed ring having the inner gear teeth and the outer groove.
25. The gear shifting coupling as claimed in claim 14, wherein the damping spring comprises at least one leaf spring and/or in that the damping spring presses with a spring flank in elastically yielding manner against a tooth flank facing toward the leaf spring of the floating gear wheel outer gear teeth.
26. The gear shifting coupling as claimed in claim 14, wherein the damping spring comprises two leaf springs, the tooth flanks of which press in elastically yielding manner on tooth flanks, facing toward one another, of the outer gear teeth of the floating gear wheel.
27. The gear shifting coupling as claimed in claim 15, wherein the damping spring comprises two leaf springs, the tooth flanks of which press in elastically yielding manner on tooth flanks, facing toward one another, of the outer gear teeth of the floating gear wheel.
28. The gear shifting coupling as claimed in claim 14, wherein to provide an installation space for the damping spring in the inner gear teeth of the sliding sleeve, at least one tooth is omitted and the damping spring is arranged in place thereof.
29. The gear shifting coupling as claimed in claim 15, wherein to provide an installation space for the damping spring in the inner gear teeth of the sliding sleeve, at least one tooth is omitted and the damping spring is arranged in place thereof.
30. The gear shifting coupling as claimed in claim 16, wherein to provide an installation space for the damping spring in the inner gear teeth of the sliding sleeve, at least one tooth is omitted and the damping spring is arranged in place thereof.
31. The gear shifting coupling as claimed in claim 14, wherein, in a neutral position, the sliding sleeve is out of toothed engagement with the floating gear wheel outer gear teeth and in that in the neutral position, the damping spring is nonfunctional.
32. The gear shifting coupling as claimed in claim 15, wherein, in a neutral position, the sliding sleeve is out of toothed engagement with the floating gear wheel outer gear teeth and in that in the neutral position, the damping spring is nonfunctional.
Description
[0016] In the figures:
[0017]
[0018]
[0019]
[0020]
[0021]
[0022] An upper half of an essentially known synchronous dual clutch 1 for a vehicle transmission is shown in
[0023] The synchronous clutch 1 comprises a middle synchronizer body 9, which is held in a shaft-fixed manner on the transmission shaft, while the axially adjacent floating gear wheels 5, 7 are rotatably mounted on the transmission shaft 3 via needle bearings.
[0024] The synchronizer body 9 is provided with outer gear teeth 11, on which a sliding sleeve 13 is displaceably guided in the axial direction using its inner gear teeth 15. The sliding sleeve 13 can be displaced in a typical manner via a shift fork, which engages in an outer groove 16, of a shift device (not shown) from the middle position shown (i.e., the neutral position) to the left or to the right to shift a gear.
[0025] Each of the floating gear wheels 5, 7 bears a clutch body 19 having an outer cone 21 and outer gear teeth 23, which can be brought into toothed engagement with the sliding sleeve inner gear teeth 15.
[0026] Synchronizer rings 25 each having a friction cone 27 and locking gear teeth 29 are inserted between the clutch bodies 19 fixedly connected to the floating gear wheels 5, 7 and the synchronizer body 9, which rings are axially displaceably and pivotably guided to a limited extent on the synchronizer body 9 in a known manner. To shift a gear and/or to couple a floating gear wheel 5, 7 to the transmission shaft 3, the sliding sleeve 13 is axially displaced, wherein firstly synchronization is established via the corresponding synchronizer ring 25. Due to the synchronization, the locking gear teeth 29 of the synchronizer ring 25 become inactive and the sliding sleeve 13 can be engaged with the outer gear teeth 17 of the relevant floating gear wheel 5, 7 via the locking gear teeth 29 and beyond.
[0027] The inner gear teeth 15 of the sliding sleeve and, using dashed lines, the outer gear teeth 17 of the floating gear wheels 5, 7 are shown in
[0028] The two leaf springs 33, 35 each have an elastically flexible spring flank 39, which are both curved outward in opposite directions to one another in the circumferential direction and delimit a free deformation space to the inside, into which the two spring flanks 39 can deform in the shifting state (
[0029] During a shifting procedure, the sliding sleeve 13 is brought into a play-subjected toothed engagement with the floating gear wheel outer gear teeth 17 in axial movement, in order to enable a torque transmission between the transmission shaft 3 and the floating gear wheel 5, as indicated in
[0030] In
[0031] In the event of a load introduction, the tooth flanks 43, 45 of the sliding sleeve inner gear teeth 15 and the floating gear wheel outer gear teeth 11 are brought to a stop with one another while consuming the centering play z and also while simultaneously building up a restoring force in the two leaf springs 33, 35. The striking movement of the tooth flanks 43, 45 is braked or damped in this case by the damping spring 31, so that clicking or rattling noises can be prevented when the tooth flanks 43, 45 strike against one another.
[0032] A second exemplary embodiment is shown in
[0033] The sliding sleeve 13 described in the preceding figures is preferably produced as follows: Firstly, a linear band strip is thus provided, which comprises gear teeth forming the inner gear teeth 15 on one flat side and a longitudinal groove forming the outer groove 16 on the opposing flat side. The band strip is then formed, i.e., bent in a round shape, into a ring shape, and joined together on its end-face band strip ends 49 (
[0034] In the above-described production process, it is preferable if the gear teeth forming the inner gear teeth 15 do not extend directly up to the respective band strip end 49, but rather the gear teeth merge in the direction toward the respective band strip end 49 into a gear teeth-free, smooth-surfaced band section 53, as indicated in