IP Library Granted Patent US 12663049
Granted Patent B2
US 12663049 · App. 18/254,944 · Granted Jun 23, 2026

Brake device, industrial robot and method

Inventor: Axel Johansson (Solna, SE)
Assignee: ABB Schweiz AG
F16D55/38B25J19/0004F16D65/28
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Quick Facts
Patent No.
US 12663049
App. No.
18/254,944
Granted
Jun 23, 2026
Kind
B2
Abstract

A brake device including a first device; a brake element having a first frictional brake surface and an engageable structure; a second device movable relative to the first device; a second frictional brake surface; a force device arranged to press the first frictional brake surface and the second frictional brake surface against each other with a pressing force; and an actuator connected to the first device, the actuator including an engaging structure movable between a disengaged position not engaging the engageable structure, and an engaged position engaging the engageable structure to brake relative motion between the first device and the second device; wherein a dynamic friction coefficient between the first frictional brake surface and the second frictional brake surface is less than 0.3, such as less than 0.15, or less than 0.1; and wherein the pressing force is dimensioned with respect to the dynamic friction coefficient.

Claims (52)

1 . A brake device comprising:

a first device;

a brake element having a first frictional brake surface and an engageable structure;

a second device movable relative to the first device;

a second frictional brake surface;

a force device arranged to press the first frictional brake surface and the second frictional brake surface against each other with a pressing force; and

an actuator connected to the first device, the actuator including an engaging structure movable between a disengaged position, where the engaging structure does not engage the engageable structure, and an engaged position, where the engaging structure engages the engageable structure to brake relative motion between the first device and the second device;

wherein a dynamic friction coefficient between the first frictional brake surface and the second frictional brake surface is less than 0.3; and

wherein the pressing force is dimensioned with respect to the dynamic friction coefficient.

2 . The brake device according to claim 1 , wherein the second device is rotatable relative to the first device about a rotation axis, wherein the brake device is configured to exert a target dynamic braking torque against relative rotation between the first frictional brake surface and the second frictional brake surface, and wherein the pressing force is also dimensioned with respect to the target dynamic braking torque.

3 . The brake device according to claim 2 , wherein the brake element is flat.

4 . The brake device according to claim 2 , wherein the engageable structure comprises one or more teeth.

5 . The brake device according to claim 2 , wherein the force device comprises a spring.

6 . The brake device according to claim 1 , wherein the brake element is flat.

7 . The brake device according to claim 1 , wherein the engageable structure comprises one or more teeth.

8 . The brake device according to claim 1 , wherein the force device comprises a spring.

9 . A brake device comprising:

a first device;

a brake element having a first frictional brake surface and an engageable structure;

a second device movable relative to the first device;

a second frictional brake surface;

a force device arranged to press the first frictional brake surface and the second frictional brake surface against each other; and

an actuator connected to the first device, the actuator including an engaging structure movable between a disengaged position, where the engaging structure does not engage the engageable structure, and an engaged position, where the engaging structure engages the engageable structure to brake relative motion between the first device and the second device;

wherein the engaging structure and/or the engageable structure is configured such that the engaging structure resiliently engages the engageable structure when the engaging structure adopts the engaged position.

10 . The brake device according to claim 9 , wherein the engageable structure comprises one or more apertures contributing to the resilient engagement.

11 . The brake device according to claim 10 , wherein each aperture is a slot extending substantially in a radial direction with respect to the rotation axis.

12 . The brake device according to claim 10 , wherein the second device is rotatable relative to the first device about a rotation axis.

13 . The brake device according to claim 10 , wherein each aperture is a slot extending substantially in a radial direction with respect to the rotation axis.

14 . The brake device according to claim 9 , wherein the second device is rotatable relative to the first device about a rotation axis.

15 . The brake device according to claim 14 , wherein the brake device is configured such that the brake element can rotate at least 0.5 degrees about the rotation axis during the resilient engagement between the engaging structure and the engageable structure.

16 . An industrial robot comprising a brake device having:

a first device;

a brake element having a first frictional brake surface and an engageable structure;

a second device movable relative to the first device;

a second frictional brake surface;

a force device arranged to press the first frictional brake surface and the second frictional brake surface against each other with a pressing force; and

an actuator connected to the first device, the actuator including an engaging structure movable between a disengaged position, where the engaging structure does not engage the engageable structure, and an engaged position, where the engaging structure engages the engageable structure to brake relative motion between the first device and the second device;

wherein a dynamic friction coefficient between the first frictional brake surface and the second frictional brake surface is less than 0.3; and

wherein the pressing force is dimensioned with respect to the dynamic friction coefficient.

17 . A method of preparing a brake device, the method comprising:

providing a brake device having:

a brake element having a first frictional brake surface and an engageable structure;

a second device movable relative to the first device;

a second frictional brake surface;

a force device arranged to press the first frictional brake surface and the second frictional brake surface against each other with a pressing force; and

an actuator connected to the first device, the actuator including an engaging structure movable between a disengaged position, where the engaging structure does not engage the engageable structure, and an engaged position, where the engaging structure engages the engageable structure to brake relative motion between the first device and the second device;

wherein a dynamic friction coefficient between the first frictional brake surface and the second frictional brake surface is less than 0.3; and

dimensioning the pressing force based on the dynamic friction coefficient.

18 . The method according to claim 17 , wherein the second device is rotatable relative to the first device about a rotation axis, and wherein the method further comprises:

determining a target dynamic braking torque of the brake device; and

dimensioning the pressing force based on the target dynamic braking torque.

19 . The method according to claim 17 , further comprising connecting the first device of the provided brake device to a base structure; and connecting the second device of the provided brake device to a driven member.