Shifter assembly having a pivot mechanism
10495211 · 2019-12-03
Assignee
Inventors
Cpc classification
F16H2059/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H59/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H59/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H59/105
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H59/0204
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H59/044
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H59/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H59/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A shifter assembly including a shift lever pivotally mounted to a housing, a shift lever, a first pivot mechanism, a gimbal ring, and a second pivot mechanism. The lever is movable in a first gate along a first plurality of paths, a second gate along a second plurality of paths, and a bridge gate between the first and second gates. The first pivot mechanism is mounted to the lever to permit movement about a first pivot axis within one of the gates. The gimbal has an aperture and is disposed about and coupled to the lever. The second pivot mechanism is mounted to the gimbal to permit movement about a second pivot axis within another one of the gates. The axes are spaced from each other. The gimbal has receivers recessed from the inner surface with the first pivot mechanism engaging the receivers to couple the lever to the gimbal.
Claims
1. A shifter assembly for changing gears in a vehicle transmission, said shifter assembly comprising: a housing; a shift lever pivotally mounted to said housing and movable in a first gate along a first plurality of shift paths, a second gate along a second plurality of shift paths, and a bridge gate between said first and second gates with said gates being different from each other; a first pivot mechanism mounted to said shift lever to permit movement of said shift lever relative to said housing about a first pivot axis within one of said gates; a gimbal ring having an outer surface and an inner surface defining an aperture with said gimbal ring disposed about and coupled to said shift lever with said shift lever extending through said aperture; and a second pivot mechanism mounted to said gimbal ring to permit movement of said shift lever relative to said housing about a second pivot axis within another one of said gates, said second pivot axis being spaced from said first pivot axis; said gimbal ring having a pair of pivot receivers recessed from said inner surface and spaced from said outer surface with each of said pivot receivers closed from said outer surface of said gimbal ring and having a receiver bearing surface, with said first pivot mechanism of said shift lever engaging each of said pivot receivers to pivotally couple said shift lever to said gimbal ring and said first pivot mechanism cooperating with said receiver bearing surfaces to allow movement of said shift lever about said first pivot axis; wherein each of said pivot receivers of said gimbal ring has a pair of receiver walls extending from said receiver bearing surface to define an open slot.
2. The shifter assembly as set forth in claim 1, wherein said first pivot axis is substantially perpendicular to said second pivot axis.
3. The shifter assembly as set forth in claim 1, wherein said gimbal ring pivots in unison with said shift lever during said pivoting of said shift lever about said second pivot axis.
4. The shifter assembly as set forth in claim 1, wherein said second pivot mechanism includes a pair of bores defined in said housing and a pair of opposing protrusions extending from said outer surface of said gimbal ring.
5. The shifter assembly as set forth in claim 4, wherein said protrusions are separated from each other and spaced from said aperture of said gimbal ring.
6. The shifter assembly as set forth in claim 4, wherein said housing is formed from at least two housing elements that cooperate to pivotally support said gimbal ring with one of said bores of said second pivot mechanism defined in each of said housing elements.
7. The shifter assembly as set forth in claim 6, wherein each of said housing elements include an arcuate receiver disposed adjacent said bore of said second pivot mechanism having a configuration complementary to said outer surface of said gimbal ring for accommodating said gimbal ring.
8. The shifter assembly as set forth in claim 1, wherein said inner surface of said gimbal ring defines a first perimeter and said shift lever has an outer surface adjacent said first pivot mechanism defining a second perimeter with said first perimeter being larger than said second perimeter to permit relative movement between said shift lever and said gimbal ring when said shift lever moves in at least one of said gates.
9. The shifter assembly as set forth in claim 1, wherein said first pivot mechanism includes a pair of opposing pivot keys separately mounted to said shift lever and each extending outwardly from said shift lever.
10. The shifter assembly as set forth in claim 1, wherein said first pivot mechanism includes a pair of opposing pivot keys each having a key bearing surface with said key bearing surfaces cooperating with said receiver bearing surfaces to facilitate said movement of said shift lever about said first pivot axis.
11. The shifter assembly as set forth in claim 10, wherein said key bearing surface and said receiver bearing surface each have a tapered profile.
12. The shifter assembly as set forth in claim 10, wherein each of said pivot keys of said shift lever have a pair of key walls depending from said key bearing surface and each of said pivot receivers of said gimbal ring have a pair of receiver walls that cooperate with said key walls to limit movement of said shift lever about said first pivot axis.
13. The shifter assembly as set forth in claim 12, wherein said key walls of said pivot keys define a first angle therebetween and said receiver walls of said pivot receivers define a second angle therebetween with said second angle being larger than said first angle.
14. The shifter assembly as set forth in claim 10, wherein said pivot keys have an axial lock spaced from said key bearing surface and said pivot receivers have an axial lock receiver spaced from said receiver bearing surface with said axial lock cooperating with said axial lock receiver to at least partially limit axial translation of said shift lever with respect to said gimbal ring.
15. The shifter assembly as set forth in claim 14, wherein said axial lock of said pivot key is further defined as a tooth, and said axial lock receiver of said pivot receiver is further defined as a notch for engaging said tooth.
16. The shifter assembly as set forth in claim 1, wherein said bridge gate is substantially perpendicular to at least one of said first gate and said second gate.
17. The shifter assembly as set forth in claim 1, wherein a first stable position is defined where said bridge gate intersects said first gate, and a second stable position is defined where said bridge gate intersects said second gate, and wherein said shift lever is biased: toward said first stable position when said shift lever moves along said first plurality of shift paths, and toward said second stable position when said shift lever moves along said second plurality of shift paths.
18. The shifter assembly as set forth in claim 17, wherein said first plurality of shift paths includes a first pair of unstable positions spaced from said first stable position, said second plurality of shift paths includes a second pair of unstable positions spaced from said second stable position, and wherein said shift lever is biased: away from each of said first pair of unstable positions toward said first stable position when said shift lever moves in said first gate, and away from each of said second pair of unstable positions toward said second stable position when said shift lever moves in said second gate.
19. The shifter assembly as set forth in claim 17, wherein said shift lever is biased along said bridge gate toward said first stable position when said shift lever is closer to said first stable position than to said second stable position.
20. The shifter assembly as set forth in claim 17, further including a detent mechanism disposed between said shift lever and said housing for biasing said shift lever along said bridge gate between said first stable position and said second stable position.
21. The shifter assembly as set forth in claim 20, wherein said detent mechanism includes a spring-biased plunger coupled to said shift lever, and first and second receivers defined in said housing with said plunger engaging said first receiver when said shift lever is in said first gate and engaging said second receiver when said shift lever is in said second gate.
22. The shifter assembly as set forth in claim 21, wherein said spring-biased plunger is adapted to axially bias said shift lever with respect to said second pivot mechanism.
23. The shifter assembly as set forth in claim 21, wherein said second pivot mechanism includes a pair of sockets defined in said housing and a pair of opposing protrusions extending from said outer surface of said gimbal ring, each of said sockets having inclined walls with said spring-biased plunger urging said protrusions of said gimbal ring against said walls of said sockets.
24. The shifter assembly as set forth in claim 1, wherein said shift lever has an inner surface defining an inner chamber, said inner chamber being at least partially disposed adjacent to said first pivot mechanism.
25. A shifter assembly for changing gears in a vehicle transmission, said shifter assembly comprising: a housing; a shift lever pivotally mounted to said housing and movable in a first gate along a first plurality of shift paths, a second gate along a second plurality of shift paths, and a bridge gate between said first and second gates with said gates being different from each other; a first pivot mechanism mounted to said shift lever to permit movement of said shift lever relative to said housing about a first pivot axis within one of said gates; a gimbal ring having an outer surface and an inner surface defining an aperture with said gimbal ring disposed about and coupled to said shift lever with said shift lever extending through said aperture; and a second pivot mechanism mounted to said gimbal ring to permit movement of said shift lever relative to said housing about a second pivot axis within another one of said gates, said second pivot axis being spaced from said first pivot axis; said gimbal ring having a pair of pivot receivers recessed from said inner surface and spaced from said outer surface with each of said pivot receivers closed from said outer surface of said gimbal ring and having a receiver bearing surface, with said first pivot mechanism of said shift lever engaging each of said pivot receivers to pivotally couple said shift lever to said gimbal ring and said first pivot mechanism cooperating with said receiver bearing surfaces to allow movement of said shift lever about said first pivot axis; wherein said first pivot mechanism includes a pair of opposing pivot keys each having a key bearing surface with said key bearing surfaces cooperating with said receiver bearing surfaces to facilitate said movement of said shift lever about said first pivot axis; and wherein said key bearing surface and said receiver bearing surface each have a tapered profile.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Other advantages of the present invention will be readily appreciated, as the same becomes better understood by reference to the following detailed description when considered in connection with the accompanying drawings.
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DETAILED DESCRIPTION OF THE INVENTION
(29) With reference now to the Figures, wherein like numerals indicate like parts throughout the several views, a shifter assembly is shown at 30 in
(30) Referring now to
(31) As shown best in
(32) Referring now to
(33) Referring now to
(34) As noted above, the shift lever 34 extends through the aperture 66 of the gimbal ring 56. To that end, and as shown in
(35) As shown best in
(36) Referring now to
(37) As noted above, the shifter assembly 30 of the present invention is configured so as to enable the driver to operate the transmission 31 in a conventional automatic shifting mode and select between a plurality of vehicle driving modes such as park, neutral, reverse, and drive, as well as operate the transmission 31 in a sport manual shifting mode and selectively shift up and shift down to change between gear sets. As will be appreciated from the description of the movement of the shift lever 34 and gates 36, 40, 44 below, the shifter assembly 30 of the present invention is also configured so as to simplify the process of changing between the automatic shifting mode and the sport manual shifting mode. To that end, movement of the shift lever 34 along the bridge gate 44 between the first gate 36 (see
(38) As shown best in the schematic representation of movement of shift lever 34 of the shifter assembly 30 in
(39) The first plurality of shift paths 38A, 38B includes a first pair of unstable positions 110A, 110B spaced from the first stable position 106, and the second plurality of shift paths 42A, 42B includes a second pair of unstable positions 112A, 112B spaced from the second stable position 108. The shift lever 34 is biased: away from each of the first pair of unstable positions 110A, 110B toward the first stable position 106 when the shift lever 34 moves in the first gate 36, and away from each of the second pair of unstable positions 112A, 112B toward the second stable position 108 when the shift lever 34 moves in the second gate 40. The shift lever 34 is biased along the bridge gate 44 toward the first stable position 106 when the shift lever 34 is closer to the first stable position 106 than to the second stable position 108.
(40) Referring now to
(41) The detent mechanism 114 includes a plunger 120 biased by a spring 122 and coupled to the shift lever 34, and first and second receivers 124, 126 defined in the housing 32, specifically in the housing lower element 50. As shown best in
(42) In one embodiment, the shifter assembly 30 further includes a ramp 128 disposed between the first receiver 124 and the second receiver 126. The ramp 128 urges the plunger 120 of the detent mechanism 114 toward the closer of the first receiver 124 and the second receiver 126 such that the shift lever 34 is biased: toward the first stable position 106 when the shift lever 34 moves along the first plurality of shift paths 38A, 38B, and toward the second stable position 108 when the shift lever 34 moves along the second plurality of shift paths 42A, 42B. As shown best in
(43) As noted above, in one embodiment of the shifter assembly 30 of the present invention, the second pivot mechanism 58 includes a pair of bores 72A, 72B defined in the housing 32, and a pair of opposing protrusions 74A, 74B extending from the outer surface 62 of the gimbal ring 56. As shown in
(44) Referring now to
(45) The link 140 is coupled to the shift lever 34 and the emitter 136 in such a manner as to permit movement of the shift lever 34 relative to the link 140 during the movement of the shift lever 34. In other words, the link 140 is capable of rotating, angling, translating or the like in one or more directions relative to the shift lever 34. Stated yet another way, although the movement of the link 140 is tied to or dependent upon the movement of the shift lever 34, the movement of the link 140 is not in unison with the shift lever 34 and these components do no move as a single unit. As shown, the link 140 is coupled to at least one of the shift lever 34 and the emitter 136 through a rotatable joint, generally indicated at 146. The rotatable joint 146 permits the relative movement of the link 140 to the shifter lever 34 without restricting or binding the movement of the shift lever 34.
(46) The shift lever 34, gimbal ring 56, emitter 136, link 140, and other components cooperate to define a shifter subassembly, generally indicated at 143, that is supported by and at least partially within the housing 32. Each of these components, as well as additional components of the shifter subassembly 143, will be described in greater detail below.
(47) As best shown in
(48) As illustrated throughout the Figures, the link 140 is coupled to both of the shift lever 34 and the emitter 136 through corresponding ball joints 148A, 148B. As such, the rotatable joint 146, in the embodiment shown, if further defined as ball joints. More specifically, the guide 145 and the link 140 are pivotally coupled about a first ball joint 148A, and the shift lever 34 and the link 140 are pivotally coupled about the second ball joint 148B. It should be appreciated that the rotatable joint 146 may be of any suitable configuration. Referring now to
(49) In one embodiment, the emitter 136 is further defined as a magnet and the detector 138 is responsive to predetermined changes in magnetic fields generated by the magnet to determine the position of the emitter 136 along the fixed path 140. To that end, the detector 138 may be of any suitable type sufficient to sense and respond to changes in magnetic fields. Moreover, it is conceivable that the emitter 136 could be manufactured from an iron-based material and the detector 138 could be a hall-effect sensor that generates a magnetic field and is capable of responding to changes in the field due to interaction of the iron-based material of the emitter 136.
(50) In one embodiment, the emitter 136 is further defined as a first emitter 136A, the detector 138 is further defined as a first detector 138A, the fixed path 142 is further defined as a first fixed path 142A, the link 140 is further defined as a first link 140A, and the shifter assembly 30 further includes another sensing arrangement. The additional sensing arrangement includes a second emitter 136B spaced from the shift lever 34 and movable along a second fixed path 142B, a second detector 138B coupled to the housing 32 for determining a position of the second emitter 136B along the second fixed path 142B, and a second link 140B. The second link 140B has opposing first and second ends 152, 154 with the second link 140B coupled to the shift lever 34 adjacent the first end 152. The second emitter 136B is coupled to the second link 140B adjacent the second end 154 such that selected movement of the shift lever 34 causes corresponding movement of the second emitter 136B along the second fixed path 142B and the second detector 138B determines a position of the second emitter 136B along the second fixed path 142B. The second fixed path 142B has a substantially arcuate profile (compare
(51) In one embodiment, the shifter assembly 30 further includes an arm 156 pivotally mounted to the housing 42, specifically to the lower of the housing inner elements 52A, with the second emitter 136B supported by the arm 156 and the second end 154 of the second link 140B coupled to the arm 156 so as to move the arm 156, and the second emitter 136B, relative to the shift lever 34 during the selected movement of the shift lever 34. To that end, the arm 156 defines a slot 158 with the second end 154 of the second link 140B disposed within the slot 158 and moveable within the slot 158 when the shift lever 34 moves within the first and second gates 36, 40. The arm 156 includes a first arm end 160 pivotally mounted to the housing 32, as discussed above, and a second arm end 162 supporting the second emitter 136B adjacent thereto, with the slot 158 disposed between the first arm end 160 and the second arm end 162 of the arm 156.
(52) The first detector 138A recognizes a change in position of the first emitter 138A only when the shift lever 34 moves in one of the first and second gates 36, 40, and the second detector 138B recognizes a change in position of the second emitter 138B only during the selected movement of the shift lever 34 along the bridge gate 44.
(53) Referring now to
(54) The circuit board 164 defines a notch 172 to accommodate movement of the shift lever 34 within the notch 172 without engaging the circuit board 164. It will be appreciated that this configuration optimizes packaging space of the shifter assembly 30 and facilitates simple assembly of the housing 32, as noted above. As shown in
(55) In operation, the driver can actuate the shift knob 46 which, in turn, moves the shift lever 34. The shift lever 34 can move between the stable positions 106, 108 to change between operating the transmission 31 in the automatic shifting mode and the sport manual shifting mode, whereby movement of the shift lever 34 along the bridge gate 44 between the stable positions 106, 108 is causes corresponding movement of the second emitter 136B which, in turn, the second detector 138B senses and can generate a signal that can be used by the electric control module 33 to differentiate between the shifting modes. Further, in either of the shifting modes, movement along any of the shift paths 38A, 38B, 42A, 42B toward any of the unstable positions 110A, 110B, 112A, 112B causes corresponding movement of the first emitter 136A which, in turn, the first detector 138A senses and can generate a signal that can be used by the electric control module 33 to differentiate between shift selections. Thus, the movement of the first emitter 136A can be used to determine a desired change between gear sets, as well to determine a desired change between operating modes.
(56) In this way, the shifter assembly 30 of the present invention provides improved functionality, usability, and ergonomics in connection with conventional automatic transmission systems and, at the same time, reduces the cost and complexity of manufacturing and assembling shifter assemblies 30.
(57) The invention has been described in an illustrative manner, and it is to be understood that the terminology which has been used is intended to be in the nature of words of description rather than of limitation. Many modifications and variations of the present invention are possible in light of the above teachings, and the invention may be practiced otherwise than as specifically described.