ELECTRONIC BRAKE VALVE CONTROLLER WITH ADJUSTABLE FRICTION AND DETENT TORQUE
20180093649 ยท 2018-04-05
Assignee
Inventors
Cpc classification
B60T15/041
PERFORMING OPERATIONS; TRANSPORTING
G05G5/06
PHYSICS
G05G5/00
PHYSICS
G05G2700/12
PHYSICS
G05G1/04
PHYSICS
International classification
G05G1/04
PHYSICS
Abstract
A brake controller having independently adjustable friction and detent torque to allow for easy adjustment of handle feel without changing or replacing components. The brake handle is coupled to a cam that rotates with the handle and has a series of divots in its outer circumference corresponding to established brake handle positions. A detent roller is biased by an adjustable spring into engagement with the outer circumference of the cam and thus into the divots when the handle is moved. A separately adjustable spring biases a lateral surface of the cam into engagement with a frictional surface. Independent adjustment of the two spring can adjust both detent and friction torque, thus allowing a user to easily adjust handle feel without having to change or replace handle components
Claims
1. A brake controller having independently adjustable friction and detent torque, comprising: a user handle rotatable into and between a series of predetermined positions; a cam associated with the user handle for rotation therewith; a first spring assembly providing a first biasing force resisting rotation of the cam; and a second spring assembly providing a second biasing force resisting rotation of the cam.
2. The brake controller of claim 1, wherein the first spring assembly comprises a lever, a roller carried by the lever, and a first spring positioned to provide a first biasing force urging the roller into contact with the cam.
3. The brake controller of claim 2, wherein the cam includes an outer circumference having a series of divots corresponding to the series of predetermined positions into which the roller may extend when the handle is rotated.
4. The brake controller of claim 3, wherein the first spring assembly further comprises a screw associated with the first spring that may be rotated to increase or decrease compression of the first spring.
5. The brake controller of claim 1, wherein the second spring assembly comprises a second spring positioned to provide a second biasing force urging a lateral surface of the cam into a frictional surface.
6. The brake controller of claim 5, wherein the second spring assembly further comprises a spring cup that may be rotated to increase or decrease compression of the second spring.
7. A brake controller having independently adjustable friction and detent torque, comprising: a user handle rotatable into and between a series of predetermined positions; a cam interconnected to the user handle for rotation therewith and including an outer circumference and two opposing lateral surfaces; a first spring assembly including a lever, a roller carried by the lever, and a first spring positioned to provide a first biasing force urging the roller against the outer circumference of the cam; and a second spring assembly including a second spring positioned to provide a second biasing force urging the cam axially into a frictional surface that resists rotation of the cam.
8. The brake controller of claim 7, wherein the user handle and the cam are interconnected by a shaft.
9. The brake controller of claim 8, wherein the second spring is positioned about the shaft.
10. The brake controller of claim 9, wherein the frictional surface is on a disc positioned about the shaft between the handle and the cam.
11. The brake controller of claim 10, further comprising a screw that may be advanced toward or away from the lever to change the compression of the first spring and a spring cup that may be advanced or withdrawn along the shaft to change the compression of the second spring.
12. A method of independently adjusting the friction and detect torques of a brake controller, comprising the steps of: changing the compression of a first spring that provides a first biasing force resisting the rotation of a cam that is interconnected to and rotatable with a user handle of the brake controller; changing the compression of a second spring that provides a second biasing force resisting the rotation of the cam.
13. The method of claim 12, wherein the first spring is positioned to urge a roller into contact with an outer circumference of the cam.
14. The method of claim 13, wherein the second spring is positioned to urge a lateral side of the cam into contact with a frictional surface.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING(S)
[0005] The present invention will be more fully understood and appreciated by reading the following Detailed Description in conjunction with the accompanying drawings, in which:
[0006]
[0007]
[0008]
DETAILED DESCRIPTION OF THE INVENTION
[0009] Referring to the figures, wherein like numerals refer to like parts throughout, there is seen in
[0010] Referring to
[0011] Referring to
[0012] A cam 64 is fixedly attached to shaft 28 on the opposing side of outer plate 26 from handle 22 for co-rotation with handle 22. Cam 64 includes a series of divots 66 formed in its outer circumference that correspond to the established industry brake handle positions, e.g., full service, emergency service, etc. A first spring assembly 68 provides a biasing force against the outer circumference of cam 64 that resists rotation of cam 64. Spring assembly 68 includes a pivoting lever 70 having a detent roller 72 is positioned so that detent roller 72 engages the outer circumference of cam 64 and is biased to fall into divots 66 when rotated by handle 22 into proximity therewith. Lever 70 includes a recess 74 for housing a detent spring 76, seen in
[0013] Referring to
[0014] The friction torque required to move handle 22 between detent positions is controlled by the coefficient of friction of friction surface 86 and the amount of force pressing cam 64 against friction surface 86. Thus, rotation of hexagonal spring cup 94 can change the friction toque by adjusting the amount of force being applied by spring 96. Similarly, detent torque may be adjusted using adjustment screw 78 to change the amount of force that spring 76 applied to lever 70 and thus the amount of force urging detent roller 72 against the peripheral edge of cam 64 and into any divot 66. As seen in
[0015] The kinetic and static coefficient of friction of friction surface 86, in conjunction with the ratio of friction and detent torque, provide for smooth and controllable handle adjustments without any jerking or jumping when movement is initiated by a user. Adjustable controller 10 also avoids the need for railroads or owners of controller 10 to track which particularly components are needed in any controller 10 to achieve the desired handle feel as any controller 10 can be adjusted to meet the desired feel and repaired using the same components as any other controller 10. The design of controller 10 also improves the longevity of controller 10 as the torque generating interfaces, i.e., detent roller 74 and friction disk 84, are specifically designed for generating torque and thus are more robust that the conventional handle components that provide a given amount of torque simply because of their composition and design.