OVERRIDE BYPASS ASSEMBLY FOR A SEAT LOCKING MECHANISM
20170297720 ยท 2017-10-19
Inventors
- Kenneth J. Davis (Menominee, MI, US)
- Patrick Emmett Hyde (Peshtigo, WI, US)
- Scott H. Tedtman (Pound, WI, US)
Cpc classification
B64D11/0689
PERFORMING OPERATIONS; TRANSPORTING
B60N2/08
PERFORMING OPERATIONS; TRANSPORTING
B60N2/938
PERFORMING OPERATIONS; TRANSPORTING
B64D11/064
PERFORMING OPERATIONS; TRANSPORTING
B64D11/06395
PERFORMING OPERATIONS; TRANSPORTING
B60N2/146
PERFORMING OPERATIONS; TRANSPORTING
B60N2/0224
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
An override bypass assembly comprises a cable and a pulley wheel operably connected to the cable. The cable in operation rotates the pulley wheel when tension is applied to the cable. The override bypass assembly also comprises a telescoping cylinder assembly operably connected to the pulley wheel. The pulley wheel in operation moves the telescoping cylinder assembly to an unlocked position. The override bypass assembly further comprises a biasing mechanism operably connected to at least one of the pulley wheel and the telescoping cylinder assembly. The biasing mechanism in operation moves the telescoping cylinder to a locked position when tension applied to the cable is relieved.
Claims
1. An override bypass assembly of a seat locking mechanism, the override bypass assembly comprising: a cable; a pulley wheel operably connected to the cable, the cable in operation rotates the pulley wheel when tension is applied to the cable; a telescoping cylinder assembly operably connected to the pulley wheel, wherein the pulley wheel in operation moves the telescoping cylinder assembly to an unlocked position; and a biasing mechanism operably connected to at least one of the pulley wheel and the telescoping cylinder assembly, the biasing mechanism in operation moves the telescoping cylinder to a locked position when tension applied to the cable is relieved.
2. The override bypass assembly of claim 1, wherein: the telescoping cylinder assembly is operably connected to the pulley wheel through a linear slide mechanism, the linear slide mechanism comprising: a slide housing; a bearing operably connected to the pulley wheel through a bearing pin; and a slide configured to translate within the slide housing through movement of the bearing, the slide being operably connected to the telescoping cylinder assembly.
3. The override bypass assembly of claim 1, wherein the telescoping cylinder assembly further comprises: a cylinder operably connected to the pulley wheel; and a shaft housed within the cylinder, the shaft having a first end and a second end, wherein the first end operably connects to the cylinder.
4. The override bypass assembly of claim 2, wherein the telescoping cylinder assembly further comprises: a cylinder operably connected to the slide; and a shaft housed within the cylinder, the shaft having a first end and a second end, wherein the first end operably connects to the cylinder.
5. The override bypass assembly of claim 4, wherein: the biasing mechanism is operably connected to the cylinder and the slide through a cable anchor pin.
6. A seat locking mechanism comprising: a plurality of positional braking mechanisms including at least one of a longitudinal brake assembly, a lateral brake assembly, and a rotational brake assembly; an override bypass assembly in operation unlocks the plurality of positional braking mechanisms, the override bypass assembly comprising: a cable; a pulley wheel operably connected to the cable, the cable in operation rotates the pulley wheel when tension is applied to the cable; a telescoping cylinder assembly operably connected to the plurality of positional braking mechanisms, the telescoping cylinder assembly being operably connected to the pulley wheel, wherein the pulley wheel in operation moves the telescoping cylinder assembly to an unlocked position; and a biasing mechanism operably connected to at least one of the pulley wheel and the telescoping cylinder assembly, the biasing mechanism in operation moves the telescoping cylinder to a locked position when tension applied to the cable is relieved.
7. The seat locking mechanism of claim 6, wherein: the telescoping cylinder assembly is operably connected to the pulley wheel through a linear slide mechanism, the linear slide mechanism comprising: a slide housing; a bearing operably connected to the pulley wheel through a bearing pin; and a slide configured to translate within the slide housing through movement of the bearing, the slide being operably connected to the telescoping cylinder assembly.
8. The seat locking mechanism of claim 6, wherein the telescoping cylinder assembly further comprises: a cylinder operably connected to the pulley wheel; and a shaft housed within the cylinder, the shaft having a first end and a second end, wherein the first end operably connects to the cylinder, wherein the second end operably connects to the plurality of positional braking mechanisms.
9. The seat locking mechanism of claim 7, wherein the telescoping cylinder assembly further comprises: a cylinder operably connected to the slide; and a shaft housed within the cylinder, the shaft having a first end and a second end, wherein the first end operably connects to the cylinder, wherein the second end operably connects to the plurality of positional braking mechanisms.
10. The seat locking mechanism of claim 9, wherein: the biasing mechanism operably connects to the cylinder and the slide through a cable anchor pin.
11. The seat locking mechanism of claim 6, further comprising: an electric motor assembly operably connected to the plurality of positional braking mechanisms.
12. A method of assembling a seat locking mechanism comprising: installing plurality of positional braking mechanisms onto a structural support of the seat locking mechanism, the plurality of positional braking mechanisms include at least one of a longitudinal brake assembly, a lateral brake assembly, and a rotational brake assembly; installing a pulley wheel onto the structural support; operably connecting a cable to the pulley wheel, wherein the cable in operation rotates the pulley wheel when tension is applied to the cable; operably connecting a telescoping cylinder assembly to the plurality of positional braking mechanisms; operably connecting the telescoping cylinder assembly to the pulley wheel, wherein the pulley wheel in operation moves the telescoping cylinder assembly to an unlocked position; and operably connecting a biasing mechanism to at least one of the pulley wheel and the telescoping cylinder assembly, the biasing mechanism in operation moves the telescoping cylinder to a locked position when tension applied to the cable is relieved.
13. The method of claim 12, wherein: the telescoping cylinder assembly is operably connected to the pulley wheel through a linear slide mechanism, the linear slide mechanism comprising: a slide housing; a bearing operably connected to the pulley wheel through a bearing pin; and a slide configured to translate within the slide housing through movement of the bearing, the slide being operably connected to the telescoping cylinder assembly.
14. The method of claim 12, wherein the telescoping cylinder further comprises: a cylinder operably connected to the pulley wheel; and a shaft housed within the cylinder, the shaft having a first end and a second end, wherein the first end operably connects to the cylinder, wherein the second end operably connects to the plurality of positional braking mechanisms.
15. The method of claim 13, wherein the telescoping cylinder assembly further comprises: a cylinder operably connected to the slide; and a shaft housed within the cylinder, the shaft having a first end and a second end, wherein the first end operably connects to the cylinder, wherein the second end operably connects to the plurality of positional braking mechanisms.
16. The method of claim 15, wherein: the biasing mechanism operably connects to the cylinder and the slide through a cable anchor pin.
17. The method of claim 12, further comprising: installing an electric motor assembly onto the structural support; and operably connecting the electric motor assembly to the plurality of positional braking mechanisms.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022] The subject matter is particularly pointed out and distinctly claimed at the conclusion of the specification. The foregoing and other features, and advantages of the present disclosure are apparent from the following detailed description taken in conjunction with the accompanying drawings in which:
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[0034] The detailed description explains embodiments of the present disclosure, together with advantages and features, by way of example with reference to the drawings.
DETAILED DESCRIPTION
[0035] Referring now to
[0036] Referring now to
[0037] In order to control the seat locking mechanism 80 manually, an occupant of the adjustable seat will activate a position control lever (not shown), which provides tension to the cable 104. The position control lever may be located in an arm (not shown) of the adjustable seat. As tension is applied to the cable 104, the cable 104 pulls on and releases the override bypass assembly 100, which rotates a carriage tube 210 of the carriage assembly 200. In the illustrated embodiment, the override bypass assembly 100 is located towards the aft end of the seat locking mechanism 80; however the override bypass assembly 100 may be located in other various locations. The carriage tube 210 is operably connected to an aft lateral brake 502 and a forward lateral brake 504 of the lateral brake assembly 500. As the carriage tube 210 rotates the lateral brake assembly 500 is unlocked, which allows the adjustable seat to move laterally along an aft track bar 550 and a forward track bar 560. The carriage assembly 200 is operably connected to the longitudinal brake assembly 600 through a longitudinal brake cable 220. As the carriage tube 210 rotates, tension is applied to the longitudinal brake cable 220, which releases the longitudinal brake assembly 600 and allows the adjustable seat to move longitudinally (forward and/or aft) along two longitudinal track bars 610. As will be appreciated by those of skill in the art, the structural support of the seat locking mechanism 80 may be composed of the longitudinal track bars 610, the aft track bar 550, and the forward track bar 560. The carriage assembly 200 is also operably connected to the rotational brake assembly 300 through a rotational brake cable 230. As the carriage tube 210 rotates, tension is applied to the rotational brake cable 230, which releases the rotational brake assembly 300 and allows the adjustable seat to rotate. Summarily, when tension is applied to the cable 104, the override bypass assembly 100 is released, which allows the carriage assembly 200 to rotate and unlock the lateral brake assembly 500, the longitudinal brake assembly 600, and the rotational brake assembly 300. The seat locking mechanism 80 may be seen in its unlocked position in
[0038] Once the tension on the cable 104 is released, a biasing mechanism 116 will move the override bypass assembly 100 back to its locked position, which in turn rotates the carriage assembly 200 back to its locked position. With the carriage assembly 200 back in its locked position, the lateral brake assembly 500 is now locked and tension is relieved on both the longitudinal brake cable 220 and the rotational brake cable 230. The tension relief on the longitudinal brake cable 220 locks the longitudinal brake assembly 600. The tension relief on the rotational brake cable 230 allows a biasing mechanism 370 to move the rotational brake assembly 300 back to its locked position. The seat locking mechanism 80 may be seen in its locked position in
[0039] The seat locking mechanism 80 may also be unlocked automatically utilizing the electric motor assembly 400, which operably connects to the carriage assembly 200 and rotates the carriages assembly 200 to unlock the lateral brake assembly 500, the longitudinal brake assembly 600, and the rotational brake assembly 300. The seat locking mechanism 80 may be seen in its unlocked position in
[0040] Referring now to
[0041] The rotational motion of the pulley wheel 106 is translated to linear motion of the telescoping cylinder assembly 141 via a linear slide mechanism 120. In the illustrated embodiment, the linear slide mechanism 120 includes a slide housing 121, a bearing 170, a bearing pin 172, and a slide 122 operably connected to the telescoping cylinder assembly 141, as seen in
[0042] Once tension on the cable 104 is relieved, the biasing mechanism 116, operably connected to the telescoping cylinder assembly 141, will linearly move the telescoping cylinder assembly 141 back to its locked position and subsequently lock the aft lateral brake 502. In the illustrated embodiment, biasing mechanism 116 is connected to the slide 122 and the telescoping cylinder assembly 141 via the cable anchor pin 124. Also, as seen in the illustrated embodiment, the biasing mechanism 116 may be secured to the slide housing 121, via a biasing mechanism anchor pin 118. In an embodiment, the biasing mechanism 116 may be a spring.
[0043] In the illustrated embodiment, the telescoping cylinder assembly 141 includes a cylinder 142, a shaft 146, a cap 152 and a roll pin 144, as seen in
[0044] Referring now
[0045] The carriage housing 216 may also be operably connected to the electric motor assembly 400 via a motor link 480. The motor link 480 connects to the carriage housing 216 at the motor connection point 218 located on the carriage housing 216. The carriage assembly 200 may also include a damper 280 operably connected to the carriage housing 216 through a damping link 282. The damper 280 dampens the motions of the electric motor assembly 400.
[0046] Referring now to
[0047] Once tension on the cable 104 is relieved and/or the electric motor assembly 400 moves the carriage housing 216 back to the locked position, the biasing mechanism 370 will move the cam 320 radially outward, thus allowing the lifting pin 324 to slide down in slot 350 and let the rotational brake pin 322 move back into a locking hole 306. In the illustrated embodiment, the biasing mechanism 370 is operably connected to the cam 320 through the control lever 314, as seen in
[0048] The electric motor assembly 400 includes a drive motor 410, a drive motor link 480, a solenoid 460 operably connected to the drive motor 410 through a clutch system 430, as seen in
[0049] Referring now to
[0050] The carriage tube 210 is operably connected to the aft lateral housing 530, such that the carriage tube 210 is free to rotate. The carriage tube 210 is fixedly connected to the aft lateral lock pin 554 through the aft lateral brake lever 558. As the carriage tube 210 rotates, the aft lateral lock pin 554 will engage (i.e. lock, as seen in
[0051] While the present disclosure has been described in detail in connection with only a limited number of embodiments, it should be readily understood that the present disclosure is not limited to such disclosed embodiments. Rather, the present disclosure can be modified to incorporate any number of variations, alterations, substitutions, combinations, sub-combinations, or equivalent arrangements not heretofore described, but which are commensurate with the scope of the present disclosure. Additionally, while various embodiments of the present disclosure have been described, it is to be understood that aspects of the present disclosure may include only some of the described embodiments. Accordingly, the present disclosure is not to be seen as limited by the foregoing description, but is only limited by the scope of the appended claims.