Unidirectional torque-transfer coupling
10962062 ยท 2021-03-30
Assignee
Inventors
Cpc classification
F16K31/44
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D1/101
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D1/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K31/44
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A unidirectional torque-transfer coupling is disclosed. The coupling may include a first ring and a second ring that share a common axis, wherein the first ring is configured to rotate about the common axis from a first position to a second position; a first member extending from the first ring; and a second member extending from the second ring, wherein, when the first ring is in the second position and a valve coupled to the second ring is in an open position, the second member engages the first ring, and wherein, when the first ring moves from the second position to the first position, the first member causes the second ring to rotate in a same direction as the first ring Furthermore, when the first ring is in the second position, a valve is substantially unrestricted by the first ring with regard to moving to an open position.
Claims
1. A coupling, comprising: a first ring and a second ring that share a common axis, wherein the first ring is configured to rotate about the common axis from a first position to a second position; a first member extending from the first ring, wherein an outside surface of the first member is same distance from the common axis as an outside surface of the first ring; and a second member extending from the second ring, wherein the second ring rotates freely until the second member engages the first member, wherein, when the first ring is in the second position and a valve coupled to the second ring is in an open position, the second member engages the first ring, and wherein, when the first ring moves from the second position to the first position, the first member causes the second ring to rotate in a same direction as the first ring.
2. The coupling of claim 1, further comprising: a first shaft that couples the first ring to an actuator; and a second shaft that couples the second ring to the valve.
3. The coupling of claim 2, wherein the first ring further comprises a first key to engage the first shaft.
4. The coupling of claim 2, wherein the second ring further comprises a second key to engage the second shaft.
5. The coupling of claim 1, wherein the first member is one of a plurality of first members extending from the first ring and the second member is one of a plurality of second members extending from the second ring.
6. The coupling of claim 1, wherein the first member extends from the first ring toward the second ring.
7. A system, comprising: a valve; an actuator; and a coupling comprising a first component coupled to the actuator and a second component coupled to the valve, wherein the first component and the second component share a common axis, wherein a first member extends from the first component toward the second component and a second member extends from the second component toward the first component, wherein an outside surface of the first member is same distance from the common axis as an outside surface of the first component, and wherein the second component rotates freely until the second member engages the first member.
8. The system of claim 7, wherein, when the actuator is in a first actuator position, the first component is in a first position, and when the actuator is in a second actuator position, the first component is in a second position.
9. The system of claim 8, wherein, when the first component is in the second position, the valve can move to an open position without the second member engaging the first member.
10. The system of claim 8, wherein, when the first component is in the second position, the valve is substantially unrestricted by the first component with regard to moving to an open position.
11. The system of claim 8, wherein, when the actuator moves from the second actuator position to the first actuator position, the first member engages and moves the second member such that the valve is moved to a closed position.
12. The system of claim 7, wherein the valve comprises an air valve of an air induction system.
13. The system of claim 7, wherein the actuator comprises a rotary hydraulic actuator.
14. The system of claim 7, wherein the first member extends from a plane of the first component toward a plane of the second component, and wherein the second member extends from the plane of the second component toward the plane of the first component.
15. The system of claim 7, wherein the first component is coupled to the actuator by a shaft.
16. The system of claim 7, wherein the first component is coupled to the actuator by a shaft.
17. A method, comprising: transmitting, by a controller, a signal to cause an actuator to move from a first actuator position to a second actuator position, wherein the actuator is coupled to a first component, wherein moving the actuator from the first actuator position to the second actuator position moves the first component from a first position to a second position, wherein, when the first component is in the second position, a valve is substantially unrestricted by the first component with regard to moving to an open position; and transmitting, by the controller, a signal to cause the actuator to move from the second actuator position to the first actuator position, wherein moving the actuator from the second actuator position to the first actuator position moves the first component from the second position to the first position, wherein the first component engages a second component coupled to the valve when the first component is moved from the second position to the first position, thereby closing the valve, wherein a first member extends from the first component, wherein a second member extends from the second component, wherein an outside surface of the first member is same distance from a common axis as an outside surface of the first component, and wherein the second component rotates freely until the second member engages the first member.
18. The method of claim 17, wherein the valve is moved to the open position based on a pressure differential associated with a vacuum of an air induction system.
19. The method of claim 17, wherein the actuator comprises a rotary hydraulic actuator.
20. The method of claim 17, wherein transmitting the signal to cause the actuator to move from the first actuator position to the second actuator position comprises: transmitting the signal a particular length of time before the valve is to open.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(8) This disclosure relates to a unidirectional torque-transfer coupling, referred to herein as a coupling for brevity. The coupling has universal applicability to any machine with an engine utilizing an air induction system. The term machine may refer to any machine that performs an operation associated with an industry such as, for example, mining, construction, farming, transportation, or any other industry. As some examples, the machine may be a vehicle, a backhoe loader, a cold planer, a wheel loader, a compactor, a feller buncher, a forest machine, a forwarder, a harvester, an excavator, an industrial loader, a knuckleboom loader, a material handler, a motor grader, a pipelayer, a road reclaimer, a skid steer loader, a skidder, a telehandler, a tractor, a dozer, a tractor scraper, or other above ground equipment, underground equipment, or marine equipment (e.g., a boat or another type of marine vessel).
(9)
(10) As indicated above,
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(12) Member 220 may extend from ring 210. For example, member 220 may extend perpendicularly from a plane of ring 210 (e.g., the plane may be perpendicular to the common axis 250). When engaged to form coupling 200, first member 220-1 may extend toward second ring 210-2, and second member 220-2 may extend toward first ring 210-1. First shaft 230 may couple first ring 210-1 to an actuator (not shown in
(13) As indicated above,
(14)
(15) As indicated above,
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(17) Actuator 410 may include any type of actuator that can be controlled by a controller 440. As just one example, actuator 410 may include a hydraulic actuator, such as a rotary hydraulic actuator. In this case, actuator 410 may include a hydraulic fluid inlet 450 and a hydraulic fluid outlet 460, which may be used to actuate actuator 410 from a first actuator position to a second actuator position or vice versa. Controller 440 may be considered a part of system 400 or may be separate from system 400. Controller 440 may control the movement of actuator 410 and/or other components of system 400 or a machine 100 in which system 400 is included. For example, controller 440 may include an electronic control module, a processor, and/or the like. Valve 430 may include any type of valve.
(18) As indicated above,
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(20) As shown in
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(23) As indicated above,
INDUSTRIAL APPLICABILITY
(24) The disclosed coupling 200 may be used with any system where unimpeded opening of a valve 430 is desired, such as an air induction system used with an engine 180. Referring now to
(25) Furthermore, coupling 200 may enable the closing of valve 430 by actuator 410. Referring to
(26) Controller 440 may control operations of system 400. For example, controller 440 may transmit a signal to cause actuator 410 to move from first actuator position 510 to second actuator position 610 or vice versa. Controller 440 may control actuator 410 based on operation of system 400 and/or operation of engine 180 in which system 400 is included. For example, controller 440 may transmit a signal to move actuator 410 to second actuator position 610 a particular length of time before valve 430 is to open to provide air flow for an air induction system of engine 180. Controller 440 may transmit a signal to move actuator 410 to first actuator position 510 when valve 430 is to be closed (e.g., based on ceasing operation of engine 180, based on detecting contaminants or particles in air flowing via valve 430, and/or the like).
(27) As used herein, the articles a and an are intended to include one or more items, and may be used interchangeably with one or more. Also, as used herein, the terms has, have, having, or the like are intended to be open-ended terms. Further, the phrase based on is intended to mean based, at least in part, on.
(28) The foregoing disclosure provides illustration and description, but is not intended to be exhaustive or to limit the implementations to the precise form disclosed. Modifications and variations may be made in light of the above disclosure or may be acquired from practice of the implementations. It is intended that the specification be considered as an example only, with a true scope of the disclosure being indicated by the following claims and their equivalents. Even though particular combinations of features are recited in the claims and/or disclosed in the specification, these combinations are not intended to limit the disclosure of various implementations. Although each dependent claim listed below may directly depend on only one claim, the disclosure of various implementations includes each dependent claim in combination with every other claim in the claim set.