MANUAL SEAT HEIGHT ADJUSTER MECHANISM
20170246967 ยท 2017-08-31
Inventors
- Mario Miguel Pichardo Ramirez (San Antonio La Isla, MX)
- Diego Santillan Gutierrez (Tizayuca, MX)
- Mario Garcia Lannoy (Toluca, MX)
Cpc classification
B60N2/1655
PERFORMING OPERATIONS; TRANSPORTING
B60N2/18
PERFORMING OPERATIONS; TRANSPORTING
B60N2/166
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A manually operated seat height adjustment actuator mechanism includes a rotatory actuator-driven torque input mechanism defining a first axis and a torque output mechanism defining a second axis offset from the first axis. The rotatory actuator-driven torque input mechanism is provided by a planetary gear assembly. The torque output mechanism comprises a cycloidal drive assembly including eccentrically driven gears. Linking gearing operatively links the torque input mechanism and the torque output mechanism. The eccentrically driven gears engage an output pinion configured to engage a gear segment of a seat height adjustment mechanism for raising and lowering a seat.
Claims
1. A manually operated seat height adjustment actuator mechanism, comprising: a torque input mechanism comprising a planetary gear assembly and defining a first axis; a torque output mechanism comprising a cycloidal drive assembly and defining a second axis offset from the first axis; and linking gearing operatively linking the torque input mechanism and the torque output mechanism.
2. The mechanism of claim 1, wherein the torque input mechanism comprises: a rotatory actuator defining an interior ring gear; at least one set of orbiting planetary gears engaging the ring gear and a common sun gear; and an output driver driven by the at least one set of orbiting planetary gears and configured to drive the linking gearing.
3. The mechanism of claim 2, wherein the linking gearing comprises transversely oriented bevel gears configured to drive the torque output mechanism.
4. The mechanism of claim 3, wherein the torque output mechanism comprises a worm gear driving eccentric pins.
5. The mechanism of claim 3, wherein the torque output mechanism further comprises at least one eccentrically driven gear engaged by the eccentric pins.
6. The mechanism of claim 5, wherein the at least one eccentrically driven gear engages an output pinion configured to engage a gear segment operatively linked to a seat height adjustment mechanism.
7. A manually operated seat height adjustment actuator mechanism, comprising: a rotatory actuator-driven torque input mechanism defining a first axis; a torque output mechanism defining a second axis offset from the first axis; and linking gearing operatively linking the torque input mechanism and the torque output mechanism.
8. The mechanism of claim 7, wherein the rotatory actuator-driven torque input mechanism comprises a planetary gear assembly including: a ring gear; cooperating sets of orbiting planetary gears engaging the ring gear and a common sun gear; and an output driver driven by a one of the cooperating sets of orbiting planetary gears and configured to drive the linking gearing.
9. The mechanism of claim 8, wherein the linking gearing comprises transversely oriented bevel gears configured to drive the torque output mechanism.
10. The mechanism of claim 9, wherein the torque output mechanism comprises a worm gear driving eccentric pins.
11. The mechanism of claim 9, wherein the torque output mechanism further comprises a cycloidal drive assembly comprising a pair of eccentrically driven gears engaged by the eccentric pins.
12. The mechanism of claim 11, wherein the eccentrically driven gears engage an output pinion configured to engage a gear segment operatively linked to a seat height adjustment mechanism.
13. A vehicle seat including the mechanism of claim 7.
14. An adjustable vehicle seat assembly, comprising: a seat defined by at least a back portion and a bottom portion; and a manually operated seat height adjustment actuator mechanism, comprising: a rotatory actuator-driven torque input mechanism defining a first axis; a torque output mechanism defining a second axis offset from the first axis; and linking gearing operatively linking the torque input mechanism and the offset torque output mechanism.
15. The assembly of claim 14, wherein the rotatory actuator-driven torque input mechanism comprises a planetary gear assembly including: a ring gear; cooperating sets of orbiting planetary gears engaging the ring gear and a common sun gear; and an output driver driven by a one of the cooperating sets of orbiting planetary gears and configured to drive the linking gearing.
16. The assembly of claim 15, wherein the linking gearing comprises transversely oriented bevel gears configured to drive the torque output mechanism.
17. The assembly of claim 16, wherein the torque output mechanism comprises a worm gear driving eccentric pins.
18. The assembly of claim 16, wherein the torque output mechanism further comprises a cycloidal drive assembly comprising a pair of eccentrically driven gears engaged by the eccentric pins.
19. The assembly of claim 18, wherein the eccentrically driven gears engage an output pinion configured to engage a gear segment operatively linked to a seat height adjustment mechanism disposed within the seat.
20. A vehicle including the assembly of claim 13.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] The accompanying drawing figures incorporated herein and forming a part of the specification, illustrate several aspects of the disclosed manual seat height adjustment actuator mechanism and together with the description serve to explain certain principles thereof. In the drawings:
[0014]
[0015]
[0016]
[0017]
[0018]
[0019] Reference will now be made in detail to embodiments of the disclosed manual seat height adjuster actuator mechanism, examples of which are illustrated in the accompanying drawing figures.
DETAILED DESCRIPTION
[0020]
[0021]
[0022] In the depicted embodiment, the torque input mechanism 202 includes the rotatory actuator 108 and a planetary gear assembly 203. The rotatory actuator 108 comprises an internal ring gear 212 which engages a first set of orbiting planetary gears 214a, 214b, 214c, 214d. The orbiting planetary gears 214a, 214b, 214c, 214d engage exterior teeth of a sun gear 216, which in turn comprises interior teeth which engage a second set of orbiting planetary gears 218a, 218b, 218c. Of course, the skilled artisan will appreciate that more or fewer orbiting planetary gears could be used to engage either or both of the exterior teeth and interior teeth of the common sun gear 216, in accordance with the dimensions of the various components, the amount of torque increase to be imparted by rotating the rotatory actuator 108, etc. The planetary gear assembly further includes an output driver 220 including a gear 222 driven by orbiting planetary gears 218a, 218b, 218c, an axle 224, and a bevel gear 226.
[0023] The linking gearing 206 comprises a cooperating bevel gear 228 which meshes with bevel gear 226, an axle 230, and a gear 232 which drives a portion of the torque output mechanism 204 as will be described. As depicted, the linking gearing 206 defines a longitudinal axis oriented transversely to a longitudinal axis defined by the output driver 220. This provides the described offset between the longitudinal axes 208, 210 of the torque input mechanism 202 and the torque output mechanism 204.
[0024] The torque output mechanism 204 in the depicted embodiment is provided as a cycloidal drive or epicycloidal transmission including a worm wheel 234 comprising a worm gear 236 which drives a plurality of eccentric pins 328a, 238b, 238c, 238d. The eccentric pins engage cooperating apertures 240a, 240b, 240c, 240d formed in a pair of eccentrically driven gears 242a, 242b. As is known for such epicycloid drives, apertures 240a, 240b, 240c, 240d define a larger interior circumference compared to an exterior cross-sectional diameter of eccentric pins 328a, 238b, 238c, 238d. Thus, when the worm wheel 234 rotates, the eccentric pins 232a, 232b, 232c, 232d engaging apertures 234a, 234b, 234c, 234d of gears 236a, 236b drive those gears eccentrically. In turn, the eccentric gears 242a, 242b engage and drive an output pinion 244, which as will be described actuates a seat height adjusting mechanism.
[0025] The assembled torque input mechanism 202 and torque output mechanism 204 are shown in
[0026]
[0027] Each opposed end of transverse frame member 404a is rotatably mounted to a first end of side frame members 402. In turn, a strut 406 pivotally secures the transverse frame member 404a to a floor mounted bracket 408. The transverse frame member 404b is likewise pivotally mounted to an opposed end of side frame members 402. The transverse frame member 404b is also rotatably mounted to a gear segment 410 including a gear tooth portion 412, a guide slot 414, and a strut portion 416. The strut portion 416 is pivotally attached to another floor-mounted bracket 408. A guide pin 418 associated with side frame member 402 engages guide slot 414 to guide and stabilize the path of travel of gear segment 410. As will be described below, actuating the above-described mechanism moves the gear segment 410 in an arcuately vertical path of travel, raising or lowering (arrows E) the side frame members 402 and transverse frame members 404a, 404b, thus raising or lowering a seat assembly held thereby.
[0028]
[0029] Accordingly, by the foregoing description an effective, compact, and efficient manual actuator mechanism for a seat height adjustment mechanism is provided. Advantageously, by the use of the described torque input mechanism including a planetary gear assembly and torque output mechanism including an epicycloid gear transmission, minimal operator effort in actuating the actuator mechanism provides significant output torque, and so efficiency of manual operation of the seat height adjuster is maximized. In particular, as will be appreciated the described torque input mechanism 202 and offset torque output mechanism 204 increase torque by use of the described planetary gear assembly 203 driving eccentric gearing 242a, 242b which in turn drives an output pinion 244 as described. Moreover, the mechanism provides a self-locking transmission between the worm wheel 234 by use of offsetting linking gearing 206 as described. Thus, the force of a load applied by an occupant occupying the seat bottom 104 does not cause the mechanism to operate in reverse, altering a seat height set by that occupant.
[0030] Obvious modifications and variations are possible in light of the above teachings. All such modifications and variations are within the scope of the appended claims when interpreted in accordance with the breadth to which they are fairly, legally and equitably entitled.