Disc brake actuator mounting arrangement

Information

  • Patent Application
  • 20080047787
  • Publication Number
    20080047787
  • Date Filed
    August 23, 2006
    18 years ago
  • Date Published
    February 28, 2008
    16 years ago
Abstract
A disc brake for a vehicle such as a commercial vehicle, wherein the brake caliper is provided with an actuator mounting flange surface which is parallel to the brake rotor, and a corresponding pneumatic or electric actuator is provided with a mounting flange surface which is angled, such that when mounted to the caliper, the actuator is offset at a desired angle relative to the caliper and the vehicle axle on which the caliper is located. This approach to brake design reduces brake caliper production and tooling costs by eliminating multi-stage machining operations, and lowers distribution and inventory costs by permitting standardization on a single “zero degree” caliper design, thereby offsetting additional costs associated with producing and distributing brake actuators with differing mounting flange surface angles.
Description

BRIEF DESCRIPTION OF THE DRAWINGS


FIG. 1 is a cross-sectional side view of a prior art caliper and actuator showing caliper surfaces which must be machined at multiple angles in order to locate a brake actuator at an angle relative to a vehicle axle.



FIG. 2 is a side view of a caliper and actuator in accordance with an embodiment of the present invention in which the actuator is adapted to mate with a standardized caliper having an actuator mounting flange perpendicular to a vehicle axle.



FIGS. 3
a and 3b show a cross-section view and a mounting-flange-end view, respectively, of a brake actuator caliper with offset mounting studs in accordance with a further embodiment of the present invention.





DETAILED DESCRIPTION OF THE DRAWINGS

In the embodiment shown FIG. 2, the reference label numbers correspond to those of FIG. 1 where comparable elements are illustrated. FIG. 2 thus shows a brake caliper 1 located over a brake rotor 9, which in turn is located on a vehicle axle (not illustrated). The brake caliper 1 is mated to a pneumatic actuator 2 at a mounting flange joint 3. Unlike the prior art caliper of FIG. 1, the brake caliper in the present embodiment has an actuator mounting flange surface which is machined perpendicular to the vehicle axle axis (i.e., perpendicular to a direction of movement of the brake pads toward the brake rotor when the brake is applied). Such a caliper may be referred to as a “zero degree” caliper, reflecting the lack of angular displacement of the mounting flange surface on the caliper side of the caliper-actuator joint. In order to angle the pneumatic actuator 2 upward at a 12° angle to allow greater clearance relative to the vehicle axle, the pneumatic actuator mounting flange surface, which meets the caliper actuator mounting flange surface at flange joint 3, is machined at the 12° angle. The present invention is not limited to a specific acute angle greater than 0°, for example, an actuator mounting surface angle of 5°, or an angle greater than 120, may be provided on the actuator.


The arrangement of this embodiment permits caliper 1 to be machined without the need for repositioning of the caliper during production solely for the purpose of forming an angled actuator mounting flange, and without requiring extra machining steps on actuator 2 as the actuator's mounting surface requires a machining step, whether perpendicular to a longitudinal axis of the actuator or set at an angle. This arrangement not only provides manufacturing benefits (e.g., lower production and tooling costs), it also lowers distribution and inventory management costs by permitting a single brake caliper within a caliper model line having an actuator mounting flange surface a 0° (i.e., perpendicular to the vehicle axle) to be used in multiple vehicle applications with actuators having various mounting flange angles. In view of the expense and amount of machining required on complex brake calipers, particularly the large, heavy calipers used on commercial vehicle applications, the logistical savings achieved by standardizing the caliper in a brake model line significantly outweigh any additional costs which may be associated with distributing additional versions of relatively simple and less costly pneumatic actuators having mounting surfaces machined at different angles.



FIGS. 3
a and 3b illustrate a further feature of the present invention, in which a desired kinematic relationship between the actuator's actuating rod and the caliper's actuating lever is maintained in order to ensure proper brake operation. In the FIG. 3 embodiment, the mounting studs 10 are shown displaced by a distance 11 from a center of the actuator 12. This offset is sufficient to compensate for the change in mechanical advantage that would otherwise occur due to the angular displacement of the actuator relative to the caliper. The amount of the offset distance 11 was determined by the following relationship:





Offset distance=sin ((α01)/2)×L  (1)


where α0 is the angle between caliper and the actuator in an initial orientation from which the actuator is to be displaced (0° in this embodiment), α1 is the angle between the caliper and the actuator in the desired orientation (12° in this embodiment), and L is the length of the actuator pushrod 4. The mounting stud offset resulting from the equation (1) calculation maintains the geometric relationship of the actuator pushrod rod 4 relative to the caliper's brake actuator lever 5, when in its zero stroke position, and thus maintains the original caliper-to-actuator mechanical advantage ratio.


The foregoing disclosure has been set forth merely to illustrate the invention and is not intended to be limiting. For example, a zero degree caliper may be mated to a zero degree actuator (i.e., an actuator with a mounting flange surface machined perpendicular to the actuator's longitudinal axis), via an intermediate wedge-shaped adapter which provides the desired angular offset of the actuator while still using a zero degree caliper. Because other such modifications of the disclosed embodiments incorporating the spirit and substance of the invention may occur to persons skilled in the art, the invention should be construed to include everything within the scope of the appended claims and equivalents thereof.

Claims
  • 1. A disc brake for a vehicle, comprising: a brake rotor;a caliper arranged to straddle the brake rotor and to apply a braking force to a friction surface portion of the rotor when a brake application mechanism of the caliper is actuated; anda pneumatic or electric actuator arranged to actuate the brake application mechanism to apply the braking force,wherein an actuator mounting flange surface of the brake caliper is formed perpendicular to a direction of movement of the brake pads toward the brake rotor; anda mounting surface of the pneumatic or electric actuator which mates to the brake caliper actuator mounting flange surface is formed at an angle which positions the actuator at a predetermined acute angle relative to the brake caliper when the pneumatic or electric actuator is mounted to the brake caliper.
  • 2. The disc brake of claim 1, wherein actuator mounting flange surface of the brake caliper is formed by machining.
  • 3. The disc brake of claim 2, wherein actuator mounting flange surface of the brake caliper is machined without repositioning of the caliper in a machining fixture during machining of other caliper surfaces.
  • 4. The disk brake of claim 1, wherein the pneumatic or electric actuator mounting surface is machined at an angle between 3° and 20°.
  • 5. The disk brake of claim 4, wherein the pneumatic or electric actuator mounting surface is machined at an angle of approximately 5°.
  • 6. The disk brake of claim 4, wherein the pneumatic or electric actuator mounting surface is machined at an angle of approximately 12°.
  • 7. The disk brake of claim 1, wherein mounting fastener for mounting the actuator to the caliper are laterally offset from a centerline of the actuator.
  • 8. The disk brake of claim 7, wherein lateral offset is equal to the sine of the average of a first angle corresponding to an initial orientation of the actuator relative to the caliper and a second angle corresponding to a desired orientation of the actuator to the caliper, multiplied by the length of the actuator's brake actuating pushrod.
  • 9. A vehicle axle assembly, comprising: a vehicle axle; anda disc brake disposed at a hub end of the vehicle axle, the disc brake including: a brake rotor;a caliper arranged to straddle the brake rotor and to apply a braking force to a friction surface portion of the rotor when a brake application mechanism of the caliper is actuated; anda pneumatic or electric actuator arranged to actuate the brake application mechanism to apply the braking force,wherein an actuator mounting flange surface of the brake caliper is formed perpendicular to a direction of movement of the brake pads toward the brake rotor; anda mounting surface of the pneumatic or electric actuator which mates to the brake caliper actuator mounting flange surface is formed at an angle which positions the actuator at a predetermined acute angle relative to the brake caliper when the pneumatic or electric actuator is mounted to the brake caliper.
  • 10. The vehicle axle assembly of claim 9, wherein actuator mounting flange surface of the brake caliper is formed by machining.
  • 11. The vehicle axle assembly of claim 10 wherein actuator mounting flange surface of the brake caliper is machined without repositioning of the caliper in a machining fixture during machining of other caliper surfaces.
  • 12. The vehicle axle assembly of claim 9, wherein the pneumatic or electric actuator mounting surface is machined at an angle between 3° and 20°.
  • 13. The vehicle axle assembly of claim 12, wherein the pneumatic or electric actuator mounting surface is machined at an angle of approximately 5°.
  • 14. The vehicle axle assembly of claim 12, wherein the pneumatic or electric actuator mounting surface is machined at an angle of approximately 12°.
  • 15. The vehicle axle assembly of claim 9, wherein mounting fastener for mounting the actuator to the caliper are laterally offset from a centerline of the actuator.
  • 16. The vehicle axle assembly of claim 15, wherein lateral offset is equal to the sine of the average of a first angle corresponding to an initial orientation of the actuator relative to the caliper and a second angle corresponding to a desired orientation of the actuator to the caliper, multiplied by the length of the actuator's brake actuating pushrod.