Shift selector mechanism for motor vehicle transmissions
10088042 · 2018-10-02
Assignee
Inventors
Cpc classification
F16H59/0208
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2059/0295
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2059/0269
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H61/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H59/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The mechanism includes a first part and a second part movable relative to the first part, a spring member acting on the second part such that the second part is biased onto a contoured surface, and a damper element for absorbing impacts to the first part associated with one of the first part and the second part such that movement of the second part relative to the first part causes movement of the damper element relative to one of the first part and the second part without contacting the other of the first part and the second part.
Claims
1. A shift selector mechanism for motor vehicle transmissions, comprising: a first part; a second part movable relative to the first part; a spring member acting upon the second part such that the second part is biased onto a contoured surface; and a damper element for absorbing impacts to the first part; wherein the damper element is a part of, or is attached to one of the first part and the second part, such that relative movement between the second part and the first part causes movement of the damper element relative to the other of the first part and the second part and without contacting the other of the first part and the second part; wherein the first part further comprises a bushing arranged such that the second part can slide within the bushing; and wherein a slotted end portion is formed in the bushing and the slotted end portion is surrounded by the damper element.
2. The mechanism according to claim 1, wherein the second part is a plunger arranged to at least partially slide within the first part.
3. The mechanism according to claim 1, wherein the first part comprises a damper element receiving portion receiving the damper element and retaining the damper element in position.
4. The mechanism according to claim 3, wherein the damper element is configured to act upon the damper element receiving portion such that the damper element receiving portion is biased onto the first part.
5. The mechanism according to claim 1, wherein the slotted end portion extends past the damper element such that the slotted end portion is located between the damper element and the contoured surface.
6. The mechanism according to claim 1, wherein the damper element has at least one of a coupling protrusion and a recess for engaging at least one corresponding coupling recess or protrusion formed at the slotted end portion.
7. The mechanism according to claim 1, wherein the damper element is a pre-compressed member.
8. The mechanism according to claim 1, wherein the damper element is an elastomeric member.
9. The mechanism according to claim 1, wherein the first part is a shift lever and the contoured surface is a part of or is attached to a shifter assembly housing.
10. The mechanism according to claim 1, wherein the first part is a shifter assembly housing and the contoured surface is a part of, or is attached to a shift lever.
11. A shift selector mechanism for motor vehicle transmissions, comprising: a first part; a second part movable relative to the first part; a spring member acting upon the second part such that the second part is biased onto a contoured surface; and a damper element; wherein the damper element is a part of, or is attached to one of the first part and the second part, such that relative movement between the second part and the first part causes relative movement of the damper element relative to the other of the one of the first part and the second part and without contacting the other of the first part and the second part; wherein the second part comprises a damper element receiving portion receiving the damper element and retaining the damper element in position; and wherein the second part comprises a plurality of folding flanges that surround the damper element.
12. The mechanism according to claim 11, wherein the damper element is configured to act upon the damper element receiving portion such that the damper element receiving portion is biased onto the second part.
13. The mechanism according to claim 11, wherein the damper element is an o-ring located in a groove portion of the second part.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Particular examples of the present shift selector mechanism will be described in the following. The present description is given by way of non-limiting examples and with reference to the appended drawings.
(2) In the drawings:
(3)
(4)
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(6)
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(11)
DETAILED DESCRIPTION OF EXAMPLES
(12) Several non-limiting examples of the present shift selector mechanism for controlling motor vehicle transmissions are described below with reference to the figures. In said examples, like reference numerals refer to like parts throughout the several views of the drawings.
(13) The shift selector mechanism 100 comprises a first part and a second part which are movable relative to each other.
(14) In the specific non-limiting examples shown in the drawings, the first part is a shift lever 200. In the examples shown, the reference numeral 200 could alternatively designate a bracket attached to the shift lever 200.
(15) In the examples, the second part is a plunger 300 that is arranged to slide within the shift lever 200 when the shift lever 200 is operated. The plunger 300 comprises a plunger stem 310 and a plunger head 320.
(16) The plunger 300 has a first, free end 325 located at the plunger head 320 adapted to slide on a contoured surface 400. Such contoured surface 400 is attached to a shifter assembly housing 800 that is shown in
(17) The plunger stem 310 is surrounded by or fits at least partially within a spring member in the form of a compression spring 500 for biasing the plunger 300 onto the contoured surface 400. The compression spring 500 is arranged to act directly upon the plunger 300 without acting on other parts of the mechanism 100. Specifically, a first end 510 of the compression spring 500 abuts the plunger head 320 at a surface 326, opposite to the abovementioned first, free end 325 of the plunger 300, such that the compression spring 500 acts upon the plunger head 320.
(18) The shift selector mechanism 100 of the examples also comprises a damper element 600. The damper element is a pre-compressed member, specifically an elastomeric O-ring 600 configured for suitably absorbing shock impulses, vibration, impacts, etc. acting upon the shift lever 200 for example when returning to a stable position after being operated for selecting a gearshift position. The O-ring 600 is also configured for at least partially reducing noise due to the collision of the plunger 300 against the contoured surface 400.
(19)
(20) The bushing 700 has a first end portion 710 with a first opening 711 sized to receive the plunger head 320 such that the plunger head 320 is allowed to freely slide therein. The first end portion 710 is slotted such that a number of flanges are formed thereon. In both examples, the damper element 600 is arranged surrounding the slotted end portion 710 of the bushing 700.
(21) The bushing 700 further has a second end portion 720, opposite to said first end portion 710, that is provided with a second opening 721 sized to receive the plunger stem 310 such that it is allowed to freely slide therein. The second end portion 720 also defines an abutment surface 722 upon which a second end 520 of the compression spring 500, opposite to the abovementioned first end 510 of the compression spring 500, abuts. Alternatively, the second end 520 of the compression spring 500 may be arranged to abut a surface of the shift lever 200.
(22) In the first example shown in
(23) In the second example shown in
(24) In all the examples shown in
(25)
(26) In the third example shown in
(27) In the fourth example shown in
(28)
(29) When no gearshift operations are performed, the plunger head 320 remains in a stable gearshift position, usually referred to as idle or home gearshift position. The shift lever 200 automatically returns to the idle or home gearshift position after the shift lever 200 is moved to select a desired gearshift position. In the depicted examples, the idle position corresponds to a recess of the contoured surface 400.
(30) Displacement of the shift lever 200 causes the plunger head 320 to abandon the idle position and start following a slope of the contoured surface 400. Such displacement generates a reaction force in the plunger head 320 with both a normal and a tangential component. The normal component is transmitted to the compression spring 500, which urges the plunger head 320 to remain in contact with the contoured surface 400. The tangential component is transmitted to the damper element 600, which deforms accordingly to absorb it. As a result, free play between the plunger head 320 and the shift lever 200 is eliminated by the deformation of the damper element 600. In the first and second examples, deformation of the damper element 600 causes deformation of the flanges formed at the slotted end portion 710 of the bushing 700 so as to remain in contact with the plunger 300. In other words, the flanges are urged against the plunger 300 by the damper element 600.
(31) In the third and fourth examples, deformation of the damper element 600 causes deformation of the flanges formed at the plunger 300 so as to remain in contact with the shift lever 200. In other words, the flanges are urged against the shift lever 200 by the damper element 600.
(32) Although only a number of particular examples and examples of the present shift selector mechanism have been disclosed herein, it will be understood by those skilled in the art that other alternative examples and/or uses and obvious modifications and equivalents thereof are possible.
(33) Furthermore, the present disclosure covers all possible combinations of the particular examples described. Thus, the scope of the present disclosure should not be limited by particular examples, but should be determined only by a fair reading of the claims that follow.
(34) Reference signs related to drawings and placed in parentheses in a claim, are solely for attempting to increase the intelligibility of the claim, and shall not be construed as limiting the scope of the claim.