IP Library Granted Patent US 7,516,826
Granted Patent B2
US 7,516,826 · App. 11/271,717 · Granted Apr 14, 2009

Electro-slip clutch

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Quick Facts
Patent No.
US 7,516,826
App. No.
11/271,717
Granted
Apr 14, 2009
Kind
B2
Abstract

An electro-slip clutch may include a friction stack for receiving input rotation from an input shaft and a surrounding hub and for attaching to an output member. A bearing surface may be provided adjacent the friction stack and a solenoid may further be provided. The solenoid may include a plunger in a first position pressing against the bearing surface with a first degree of force and in a second position different than the first position relative to the bearing surface. Thus, torque transmitted through the friction stack is adjustable by the solenoid. A method of operating a clutch mechanism may include providing a solenoid adjacent a friction stack and providing a first current level to the solenoid, the first current level energizing a coil of the solenoid and pushing a plunger within the solenoid towards the friction stack with a first degree of force.

Claims (42)

1. A mechanism useful as a slip clutch or brake, comprising:

a friction stack for receiving input rotation and for attaching to an output member;

a bearing surface adjacent the friction stack;

a solenoid having a plunger in a first position pressing against the bearing surface with a first degree of force and in a second position different than the first position relative to the bearing surface;

an input shaft for providing torque to a drive plate within the friction stack, wherein the plunger and the input shaft share a common longitudinal axis; and

bearings disposed between the bearing surface and the input shaft so that the bearings allow relative rotation between the bearing surface and the input shaft;

wherein torque transmitted through the friction stack is adjustable by the solenoid.

2. The mechanism of claim 1 further comprising a plurality of solenoids spaced apart relative to the bearing surface.

3. The mechanism of claim 1 further comprising a pusher extending from the bearing surface, wherein the plunger engages with the pusher in the first position.

4. The mechanism of claim 1 wherein the plunger is hollow.

5. The mechanism of claim 4 wherein the plunger shares a longitudinal axis with the friction stack.

6. The mechanism of claim 1 further comprising the output member, wherein the output member is a gear connected to the friction stack and a pulley connected to the gear.

7. The mechanism of claim 1 wherein the first position corresponds to the solenoid being energized, and the second position corresponds to the solenoid being de-energized.

8. The mechanism of claim 7 further comprising the output member, wherein the output member is a gear connected to the friction stack and a pulley connected to the gear.

9. The mechanism of claim 7 wherein a position of the plunger of the solenoid is determined remotely.

10. The mechanism of claim 1 wherein a position of the plunger of the solenoid is determined remotely.

11. A mechanism useful as a slip clutch or brake, comprising:

a friction stack for receiving input rotation and for attaching to an output member;

a bearing surface adjacent the friction stack;

a solenoid having a plunger in a first position pressing against the bearing surface with a first degree of force and in a second position different than the first position relative to the bearing surface, wherein torque transmitted through the friction stack is adjustable by the solenoid;

a coil surrounding the plunger, wherein the coil is magnetized upon activation by a solenoid actuator; and

a coil support for supporting the coil, an input shaft for providing torque to a drive plate within the friction stack, a hub for transmitting the torque from the input shaft to the drive plate, and a bearing for allowing the hub to move independently of the coil support.

12. The mechanism of claim 11 wherein the friction stack includes a drive plate receiving input rotation and a driven plate receiving torque from the drive plate, the driven plate for attaching to the output member.

13. The mechanism of claim 12 further comprising an input shaft for providing input rotation to the drive plate.

14. The mechanism of claim 13 further comprising a hub surrounding the input shaft, the hub transmitting torque from the input shaft to the drive plate.

15. The mechanism of claim 14 further comprising bearings disposed between the bearing surface and the hub so that the bearings allow relative rotation between the beam surface and the hub.

16. The mechanism of claim 14 wherein the hub includes flat surfaces that mate with flat surfaces of the drive plate.

17. The mechanism of claim 12 wherein the driven plate includes a torque pin aperture for receiving a torque pin, wherein the torque pin is connected to the output member.

18. The mechanism of claim 12 further comprising a friction pad sandwiched between the drive plate and the driven plate.

19. The mechanism of claim 12 further comprising a plurality of drive plates and a plurality of driven plates, each of the drive plates separated from a driven plate by a friction pad.

20. The mechanism of claim 11 wherein, upon providing the solenoid with a first current level, the plunger exerts a first force upon the bearing surface, and upon providing the solenoid with a second current level, less than the first current level, the plunger exerts a second force upon the bearing surface, the second force less than the first force.

21. The mechanism of claim 20 wherein the current level provided to the solenoid is adjusted automatically as determined by a sensor within a machine that utilizes the mechanism.

22. The mechanism of claim 20 wherein a current level provided to the solenoid is adjusted remotely from the mechanism.

23. The mechanism of claim 11 further comprising the output member, wherein the output member is a gear connected to the friction stack and a pulley connected to the gear.

24. The mechanism of claim 11 wherein a position of the plunger of the solenoid is determined remotely.

25. A method of operating a clutch mechanism, the method comprising:

providing a solenoid adjacent a friction stack of the clutch mechanism, the solenoid having a plunger and a coil surrounding the plunger;

providing one of a first current level and a second current level to the solenoid, the first current level corresponding to the solenoid being energized and causing the plunger to be disposed in a first position, the second current level corresponding to the solenoid being de-energized causing the plunger to be disposed in a second position different than the first position, the first current level energizing a coil of the solenoid and pushing a plunger within the solenoid towards the friction stack to the first position with a first degree of force; and

providing a coil support for supporting the coil, an input shaft for providing torque to a drive plate within the friction stack, a hub for transmitting the torque from the input shaft to the drive plate, and a bearing for allowing the hub to move independently of the coil support.

26. The method of claim 25 further comprising adjusting the current level depending on requirements of a machine in which the clutch mechanism is utilized.

27. The method of claim 26 further comprising providing a sensor within the machine to detect a function condition, sensing the function condition, and adjusting the current level automatically in response to sensor input.

28. The method of claim 26 further comprising providing a remotely adjustable switch, and adjusting the current level remotely from the clutch mechanism.

Assignments (7)
ASSIGNMENT OF INTELLECTUAL PROPERTY SECURITY AGREEMENTS Recorded Sep 29, 2015
From: GENERAL ELECTRIC CAPITAL CORPORATION, AS RETIRING AGENT
To: ANTARES CAPITAL LP, AS SUCCESSOR AGENT
Reel/Frame 036703/0859 →
RELEASE OF SECURITY INTEREST Recorded Oct 1, 2014
From: GENERAL ELECTRIC CAPITAL CORPORATION, AS AGENT
To: A & A MANUFACTURING CO., INC.
Reel/Frame 033865/0843 →
SECURITY INTEREST Recorded Sep 30, 2014
From: DYNATECT MANUFACTURING, INC.
To: GENERAL ELECTRIC CAPITAL CORPORATION, AS AGENT
Reel/Frame 033846/0730 →
CHANGE OF NAME Recorded Sep 10, 2014
From: A & A MANUFACTURING CO., INC.
To: DYNATECT MANUFACTURING, INC.
Reel/Frame 033713/0370 →
SECURITY AGREEMENT Recorded Jun 5, 2008
From: A & A MANUFACTURING CO., INC.
To: GENERAL ELECTRIC CAPITAL CORPORATION
Reel/Frame 021050/0621 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 4, 2008
From: CUSTOM PRODUCTS CORPORATION
To: A & A MANUFACTURING CO., INC.
Reel/Frame 021029/0952 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 15, 2006
From: BACON, PHILIP HART
To: CUSTOM PRODUCTS CORPORATION
Reel/Frame 017261/0288 →