Electronically controlled clutch for a winch
10259693 ยท 2019-04-16
Assignee
Inventors
Cpc classification
B66D1/14
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
An electronic actuated clutch for a winch. The winch having a motor and drive shaft which are engagable, via an electronically actuated clutch, to a spool. The clutch being operated by a solenoid which engages the clutch via a yoke. The clutch is operable between an engaged and disengaged position through energizing and de-energizing the solenoid. Operation of the clutch moves it linearly along the axis of the drive shaft into and out of engagement with the spool. Operation of the electronically actuated clutch may be done via a remote control.
Claims
1. A winch comprising: a clutch configured to slide in a linear direction parallel to a winch drive shaft axis; and an electronic solenoid configured to cause the clutch to slide in the linear direction; the electronic solenoid including a plunger arranged parallel to the winch drive shaft axis; and a yoke located toward an end of the plunger and arranged perpendicular to the winch drive shaft axis, the yoke free to move along the winch drive shaft axis at an end of the yoke opposite the plunger.
2. A winch according to claim 1, the electronic solenoid being biased towards an engaged position.
3. A winch according to claim 1, wherein the yoke is cantilevered from the plunger.
4. A winch according to claim 1, the clutch including: a continuous groove extending around an outer periphery of the clutch; wherein the yoke engages the continuous groove.
5. A winch according to claim 1, further comprising: a spool in communication with a winch drive shaft and configured for engagement by the clutch.
6. A winch of according to claim 5, wherein the spool rotates freely of the winch drive shaft when the clutch is in a disengaged position.
7. A winch according to claim 5, further comprising: an engaging surface located on the clutch; and a complementary engaging surface located on the spool.
8. A winch according to claim 7, wherein in the engaging surface of the clutch and the complementary engaging surface of the spool have interlocking geometric shapes.
9. A winch according to claim 5, further comprising: a finger extending out from the clutch; and a complementary sized and located opening for the finger located in the spool.
10. A winch according to claim 5, further comprising: a winch drive motor located on one side of the spool; the clutch being located on another side of the spool.
11. A winch according to claim 1, further comprising: the clutch including one or more keys; the one or more keys configured for engagement with a winch drive shaft and permitting the slide in the linear direction but preventing rotation of the clutch relative to the winch drive shaft axis.
12. A winch according to claim 1, further comprising: the winch drive shaft including a keyway; a corresponding keyway cut into the clutch; and a key captured in the keyway of the winch drive shaft and the corresponding keyway cut into the clutch.
13. A winch according to claim 1 further comprising: a groove in the clutch; and a complementary notch extending outward from the winch drive shaft.
14. A method of electronically controlling a winch clutch, the method comprising: de-energizing an electronic solenoid in communication with the winch clutch to cause the winch clutch to slide linearly along a winch drive shaft axis and engage a spool; the electronic solenoid including a plunger arranged parallel to the winch drive shaft axis; and a yoke located toward an end of the plunger and arranged perpendicular to the winch drive shaft axis, the yoke free to move along the winch drive shaft axis at an end of the yoke opposite the plunger.
15. A method according to claim 14, wherein the yoke is cantilevered from the plunger.
16. A method according to claim 14, further comprising: energizing the electronic solenoid; and rotating the spool independent of a winch drive shaft.
17. A method according to claim 14, wherein during the slide linearly along the winch drive shaft axis the clutch is prevented from rotation about the winch drive shaft axis.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Preferred embodiments of the invention will now be described in further detail. Other features, aspects, and advantages of the present invention will become better understood with regard to the following detailed description, appended claims, and accompanying drawings (which are not to scale) where:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT(S)
(8) Turning now to the drawings wherein like reference characters indicate like or similar parts throughout,
(9) The drive shaft 20 is rotatably mounted in the winch 10 by a bushing 26 located on each end of the drive shaft 20. The drive shaft 20 passes through the center of the spool 14. However, without engagement of the clutch 28 the spool 14 rotates free of the drive shaft 20.
(10) A clutch 28, found on the second side of the spool 14, engages the drive shaft 20 to the spool 14 via one or more keyways 30 located in the drive shaft 20. The keyways 30 allow for linear movement of the clutch 28 along the axis 32 of the drive shaft 20. However they prevent rotation of the clutch 28 relative to the drive shaft 20. The keyways 30 can take numerous forms. In the preferred embodiment there is one or more grooves 34 in the center of the clutch 28 with each groove 34 having a complementary notch 36 extending outward from the drive shaft 20. Other embodiments include but are not limited to corresponding keyways 30 in the drive shaft 20 and clutch 28 with complementary key 38 to lock the two pieces together rotationally.
(11) The clutch 28 has a continuous groove 40 along its peripheral edge 42. The solenoid 44 has a plunger 46 which is biased in an extended position by a spring 48. A yoke 50 extends from the plunger 46 and engages the continuous groove 40. When the solenoid 44 is de-energized (and the spool 14 and drive shaft 20 are engaged), as seen in the attached
(12) When the solenoid 44 is energized the spool 14 and drive shaft 20 are disengaged. Thus the spool 14 rotates freely without any engagement with the drive shaft 20. This is useful to payout line from the spool 14. This is accomplished by the yoke 50 causing the clutch 28 to move linearly relative to the drive shaft 20 along the drive shaft axis 32 as the plunger 46 is retracted into the solenoid 44. The clutch 28 is engaged by de-energizing the solenoid 44. The bias of the spring 48 will then cause the plunger 46, yoke 50 and clutch 28 to move linearly (to the right as seen in
(13) Engaging surfaces 52 between the clutch 28 and spool 14 can take various forms as best seen in
(14) The foregoing description details certain preferred embodiments of the present invention and describes the best mode contemplated. It will be appreciated, however, that changes may be made in the details of construction and the configuration of components without departing from the spirit and scope of the disclosure. Therefore, the description provided herein is to be considered exemplary, rather than limiting, and the true scope of the invention is that defined by the following claims and the full range of equivalency to which each element thereof is entitled.