RACK AND PINION DAMPER
20200386294 ยท 2020-12-10
Assignee
Inventors
Cpc classification
F16H2019/046
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/19
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2222/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/585
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/161
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H19/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2232/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2232/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/162
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A rack and pinion damper provides controllable rotary motion of a pinion by actuating a rack inside a fluid disposed within a housing. The rack includes one or two cylindrical heads which further include flow-control mechanisms. Two plugs maybe threaded into the ends of the rack sections of the housing to limit a maximum clockwise rotation and a maximum counterclockwise rotation of the pinion. The pinion maybe coupled with an external unit, such as a torque tube, to control its rotational motion.
Claims
1. A damper, comprising: (a) a housing comprising a rack section along an axial axis of the housing and a pinion section along a transverse axis of the housing; (b) a rack comprising a first head and rack teeth, wherein the first head comprises one or more first-head flow-control mechanism, and wherein the rack is slidably secured within the rack section; (c) a pinion comprising pinion teeth, operative to engage the rack teeth, wherein the pinion is rotatably secured within the pinion section; and (d) a fluid disposed within the housing; wherein a rotation of the pinion around the transverse axis actuates the rack through the fluid along the axial axis, thereby, controlling the rotation of the pinion via the one or more first-head flow-control mechanism.
2. The damper of claim 1, wherein the one or more first-head flow-control mechanism comprise at least one of an orifice through the first head and an orifice including a valve through the first head.
3. The damper of claim 1, wherein the first head is cylindrical comprising one or more first-head grooves disposed circumferentially around an outer diameter of the first head, operative to receive one or more first-head searing rings.
4. The damper of claim 1, further comprising: (e) a first plug; and wherein the rack section further comprises a first distal section operative to receive the first plug, wherein the first plug is operative to limit a first axial motion of the rack in a first direction along the axial axis, thereby, controlling a first maximum rotation of the pinion in a first direction around the transverse axis via the first plug.
5. The damper of claim 4, wherein the rack further comprises a second head comprising one or more second-head flow-control mechanism, thereby, further controlling the rotation of the pinion via the one or more second-head flow-control mechanism.
6. The damper of claim 5, wherein the one or more second-head flow-control mechanism comprise at least one of an orifice through the second head and an orifice including a valve through the second head.
7. The damper of claim 5, wherein the second head is cylindrical comprising one or more second-head grooves disposed circumferentially around an outer diameter of the second head, operative to receive one or more second-head sealing rings.
8. The damper of claim 5, further comprising: (f) a second plug; and wherein the rack section further comprises a second distal section operative to receive the second plug, wherein the second plug is operative to limit a second axial motion of the rack in a second direction along the axial axis, thereby, controlling a second maximum rotation of the pinion in a second direction around the transverse axis via the second plug.
9. The damper of claim 1, wherein the pinion is coupled with a torque tube via two brackets.
10. The damper of claim 1, wherein the pinion is rotatably secured within the pinion section via two bearings.
11. A method of damping, comprising: (a) providing a housing comprising a rack section along an axial axis of the housing and a pinion section along a transverse axis of the housing; (b) providing a rack comprising a first head and rack teeth, wherein the first head comprises one or more first-head flow-control mechanism, and wherein the rack is slidably secured within the rack section; (c) providing a pinion comprising pinion teeth, operative to engage the rack teeth, wherein the pinion is rotatably secured within the pinion section; and (d) providing a fluid disposed within the housing; wherein a rotation of the pinion around the transverse axis actuates the rack through the fluid along the axial axis, thereby, controlling the rotation of the pinion via the one or more first-head flow-control mechanism.
12. The method of claim 11, wherein the one or more first-head flow-control mechanism comprise at least one of an orifice through the first head and an orifice including a valve through the first head.
13. The method of claim 11, further comprising: (e) providing a first plug; and wherein the rack section further comprises a first distal section operative to receive the first plug, wherein the first plug is operative to limit a first axial motion of the rack in a first direction along the axial axis, thereby, controlling a first maximum rotation of the pinion in a first direction around the transverse axis via the first plug.
14. The method of claim 3, wherein the rack further comprises a second head comprising one or more second-head flow-control mechanism, thereby, further controlling the rotation of the pinion via the one or more second-head flow-control mechanism.
15. The method of claim 4, wherein the one or more second-head flow-control mechanism comprise at least one of an orifice through the second head and an orifice including a valve through the second head.
16. The method of claim 4, further comprising: (f) providing a second plug; and wherein the rack section further comprises a second distal section operative to receive the second plug, wherein the second plug is operative to limit a second axial motion of the rack in a second direction along the axial axis, thereby, controlling a second maximum rotation of the pinion in a second direction around the transverse axis via the second plug.
17. The method of claim 11, wherein the pinion is coupled with a torque tube via two brackets.
18. A method of controlling rotary motion of a pinion comprising pinion teeth, wherein the pinion is rotatably secured within a pinion section of a housing along a transverse axis of the housing, wherein the housing further comprises a rack section along an axial axis of the housing, wherein a rack is slidably secured within the rack section, wherein the rack comprises a first head and rack teeth, wherein the first head comprises one or more first-head flow-control mechanism, wherein the pinion teeth is operative to engage the rack teeth, the method comprising: (a) actuating the rack through a fluid disposed within the housing along the axial axis via the pinion, thereby, controlling a rotation of the pinion via the one or more first-head flow-control mechanism.
19. The method of claim 18, wherein the rack section further comprises a first distal section operative to receive a first plug, the method further comprising: (b) limiting a first axial motion of the rack in a first direction along the axial axis, thereby, controlling a first maximum rotation of the pinion in a first direction around the transverse axis via the first plug.
20. The method of claim 2, wherein the rack further comprises a second head comprising one or more second-head flow-control mechanism, thereby, further controlling the rotation of the pinion via the one or more second-head flow-control mechanism, and wherein the rack section further comprises a second distal section operative to receive a second plug, the method further comprising: (c) limiting a second axial motion of the rack in a second direction along the axial axis, thereby, controlling a second maximum rotation of the pinion in a second direction around the transverse axis via the second plug.
Description
DESCRIPTION OF THE DRAWINGS
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035] including its two heads
[0036]
[0037]
[0038]
[0039]
DETAILED DESCRIPTION OF THE PRESENTLY PREFERRED EMBODIMENTS
[0040]
[0041]
[0042] The rack 220 is slidably secured within the rack section 202 and can move in both directions to the left and right of the vertical axis 218 along the axial axis 204. The first cylindrical head 224 further includes one or more first-head flow-control mechanism which operate to control the flow of fluid within the damper. The second cylindrical head 222 further includes one or more second-head flow-control mechanism which operate to control the flow of fluid within the damper. In this preferred embodiment, the first-head flow-control mechanisms are a first orifice 274 and a second orifice 272, and the second-head flow-control mechanisms are a third orifice 268 and a fourth orifice 270. In an alternative embodiment, the flow-control mechanisms may further utilize valves such as spring loaded ball Valves, electronic valves that are one directional or bi-directional in order to provide additional fluid flow control for the damper.
[0043] The motion of the rack 220 within the rack section 202 in the positive and negative directions along the axial axis 204, i.e., to the right and, left of the vertical axis 218, is controlled by the one or more flow-control mechanisms 272, 274, 270, and 280. In this preferred embodiment, the one or more flow-control mechanisms 272, 274, 270, and 280 consist of four orifices. As the rack 220 moves to the right of the vertical axis 218, the fluid 226 is pushed to the left of the vertical axis 218 through the orifices 272, 274, 270, and 280 applying, a resistive force due to the viscosity of the fluid 226 whose magnitude depends on the speed of the rack 220. The greater the speed, the greater the resistive force. This effectively dampens the rotational motion of the pinion 236.
[0044] The damper further includes a first plug 230 of length L.sub.P1 at 264 that has a threaded section 234 which is disposed circumferentially around an outer diameter of the first plug 230. A first distal section 203 of the rack section 202 has a threaded section 262, shown in
[0045] A pinion 236 is substantially cylindrical and includes pinion teeth 238 which engage the rack teeth 240. The pinion 236 is rotatably secured within the pinion section 266 via two bearing/seal assemblies 250 and 252, shown in
[0046]
[0047] When the rack 220 travels to the left of the vertical axis 218 and impinges upon the first plug 230, the rack 220 stops, thereby, limiting the maximum amount of counterclockwise rotation of the pinion 236 around the transverse axis 206. When the rack 220 travels to the right of the vertical axis 218 and impinges upon the second plug 228, the rack 220 stops, thereby, limiting the maximum amount of clockwise rotation of the pinion 236 around the transverse axis 206. As such, the plugs 230 and 228 operate to further control the rotation of the pinion 236.
[0048] In
[0049] The maximum amount of clockwise rotation and the maximum amount of counterclockwise rotation of the pinion 236 can be calculated. The maximum clockwise rotation of the pinion 236 is determined by the following equation: cw=((L.sub.RHL.sub.R)2L.sub.P2)/2P.sub.D. The maximum counterclockwise rotation of the pinion 236 is determined by the following equation: cww=((L.sub.RHL.sub.R)2L.sub.P1)/2P.sub.D.
[0050]
[0051] The foregoing explanations, descriptions, illustrations, examples, and discussions have been set forth to assist the reader with understanding this invention and further to demonstrate the utility and novelty of it and are by no means restrictive of the scope of the invention. It is the following claims, including all equivalents, which are intended to define the scope of this invention.