IP Library › Granted Patent US 12,480,552
Granted Patent B2
US 12,480,552 · App. 18/118,304 · Granted Nov 25, 2025

Non-excited operation type brake for brake device and disc brake device

Inventors: Shinichi Yamadera (Tokyo, JP); Quyen Huu Nguyen (Tokyo, JP)
Assignee: AKEBONO BRAKE INDUSTRY CO., LTD.
F16D65/18F16D55/226F16D55/36H02K7/102B60T1/065B60T13/746F16D2121/22F16D2121/24F16D2125/40F16D2125/48
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,480,552
App. No.
18/118,304
Granted
Nov 25, 2025
Kind
B2
Abstract

There is provided a non-excited operation type brake for a brake device that is configured to allow rotation of a motor shaft when energized and that is configured to stop the rotation of the motor shaft when de-energized, including: a casing that is configured to function as a yoke and that includes a coil accommodating portion having a substantially U-shaped cross section and formed in an annular shape as a whole. The casing further includes an auxiliary yoke that has a substantially cylindrical shape and that is fitted inside the coil accommodating portion, the auxiliary yoke being separated from the coil accommodating portion.

Claims (52)

1 . A non-excited operation type brake for a brake device that is configured to allow rotation of a motor shaft when energized and that is configured to stop the rotation of the motor shaft when de-energized, comprising:

a casing that is configured to function as a yoke and that includes a coil accommodating portion having a substantially U-shaped cross section and formed in an annular shape as a whole;

a fixed plate that is fixed to the casing while being separated from the casing in an axial direction of the motor shaft;

an electromagnetic coil that is accommodated in the coil accommodating portion;

an armature that is disposed between the fixed plate and the electromagnetic coil;

a rotation disc that is disposed coaxially with the motor shaft between the fixed plate and the armature; and

a pressing spring that is configured to bias the armature in a direction away from the electromagnetic coil in the axial direction of the motor shaft, wherein

the rotation disc is engaged with the motor shaft or a shaft that is configured to rotate in synchronism with the motor shaft in a way of being displaceable relative to the axial direction of the motor shaft and not displaceable relative to a circumferential direction of the motor shaft,

the casing further includes an auxiliary yoke that has a substantially cylindrical shape and that is fitted inside the coil accommodating portion, the auxiliary yoke being separated from the coil accommodating portion,

the coil accommodating portion includes an inner peripheral side wall portion disposed on an inner side in a radial direction of the electromagnetic coil, an outer peripheral side wall portion disposed on an outer side in the radial direction of the electromagnetic coil, and a bottom wall portion connecting an end portion of the inner peripheral side wall portion and an end portion of the outer peripheral side wall portion in a radial direction of the motor shaft,

the inner peripheral side wall portion, the outer peripheral side wall portion, and the bottom wall portion have the same thickness,

the casing includes a casing body including the coil accommodating portion and the auxiliary yoke,

the coil accommodating portion includes a substantially L-shaped cut-and-raised piece on the bottom wall portion,

the auxiliary yoke includes an outward engaging piece extending toward the outer side in the radial direction at an end portion on a side opposite to the armature in the axial direction of the motor shaft, and

the auxiliary yoke is configured to be suppressed from coming off from the casing body by engagement between the cut-and-raised piece and the outward engaging piece.

2 . The non-excited operation type brake for the brake device according to claim 1 , wherein

the pressing spring is a coil spring and is disposed on an inner side in a radial direction of the auxiliary yoke.

3 . The non-excited operation type brake for the brake device according to claim 2 , wherein

the auxiliary yoke includes an inward engaging piece extending toward the inner side in the radial direction at an end portion on a side opposite to the armature in the axial direction of the motor shaft, and

the pressing spring is disposed between the armature and the inward engaging piece in the axial direction of the motor shaft.

4 . The non-excited operation type brake for the brake device according to claim 1 , further comprising:

a stationary disc supported by the casing in a way of being displaceable relative to the axial direction of the motor shaft and not displaceable relative to the circumferential direction of the motor shaft, wherein

a plurality of the rotation discs are provided, and

the stationary disc is disposed between the rotation discs adjacent to each other in the axial direction of the motor shaft.

5 . A disc brake device, comprising:

a caliper including a cylinder on an inner side of a rotor in an axial direction of the rotor;

a piston fitted in the cylinder;

a rotary-to-linear motion conversion mechanism that is disposed in the cylinder and that is configured to convert rotary motion into linear motion so as to push the piston toward the rotor; and

a motor gear unit that is supported by and fixed to the caliper and that is configured to drive the rotary-to-linear motion conversion mechanism, wherein

the motor gear unit includes an electric motor including a motor shaft, and a non-excited operation type brake that is configured to allow rotation of the motor shaft when energized and that is configured to stop the rotation of the motor shaft when de-energized, and

the non-excited operation type brake is the non-excited operation type brake for the brake device according to claim 1 .

6 . A disc brake device, comprising:

a caliper including a cylinder on an inner side of a rotor in an axial direction of the rotor;

a piston fitted in the cylinder;

a rotary-to-linear motion conversion mechanism that is disposed in the cylinder and that is configured to convert rotary motion into linear motion so as to push the piston toward the rotor; and

a motor gear unit that is supported by and fixed to the caliper and that is configured to drive the rotary-to-linear motion conversion mechanism, wherein

the motor gear unit includes an electric motor including a motor shaft, and a non-excited operation type brake that is configured to allow rotation of the motor shaft when energized and that is configured to stop the rotation of the motor shaft when de-energized, and

the non-excited operation type brake is the non-excited operation type brake for the brake device according to claim 2 .

7 . A disc brake device, comprising:

a caliper including a cylinder on an inner side of a rotor in an axial direction of the rotor;

a piston fitted in the cylinder;

a rotary-to-linear motion conversion mechanism that is disposed in the cylinder and that is configured to convert rotary motion into linear motion so as to push the piston toward the rotor; and

a motor gear unit that is supported by and fixed to the caliper and that is configured to drive the rotary-to-linear motion conversion mechanism, wherein

the motor gear unit includes an electric motor including a motor shaft, and a non-excited operation type brake that is configured to allow rotation of the motor shaft when energized and that is configured to stop the rotation of the motor shaft when de-energized, and

the non-excited operation type brake is the non-excited operation type brake for the brake device according to claim 3 .

8 . A disc brake device, comprising:

a caliper including a cylinder on an inner side of a rotor in an axial direction of the rotor;

a piston fitted in the cylinder;

a rotary-to-linear motion conversion mechanism that is disposed in the cylinder and that is configured to convert rotary motion into linear motion so as to push the piston toward the rotor; and

a motor gear unit that is supported by and fixed to the caliper and that is configured to drive the rotary-to-linear motion conversion mechanism, wherein

the motor gear unit includes an electric motor including a motor shaft, and a non-excited operation type brake that is configured to allow rotation of the motor shaft when energized and that is configured to stop the rotation of the motor shaft when de-energized, and

the non-excited operation type brake is the non-excited operation type brake for the brake device according to claim 4 .

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 7, 2023
From: YAMADERA, SHINICHI; NGUYEN, QUYEN HUU
To: AKEBONO BRAKE INDUSTRY CO., LTD.
Reel/Frame 062905/0365 →
Priority Claims (1)
JP 2022-035879 · Mar 9, 2022 · national
Continuity (1)
Related Publication 20230287948A1 · Sep 14, 2023
References Cited (13)
US 3381784A · Miller · 1968 [cited by examiner]
US 3672042A · Jaeschke · 1972 [cited by examiner]
US 4090161A · Fuhrer · 1978 [cited by examiner]
US 4386684A · Prokop · 1983 [cited by examiner]
US 5490583A · Anderson · 1996 [cited by examiner]
US 6471017B1 · Booz · 2002 [cited by examiner]
US 20090284105A1 · Miyashita · 2009 [cited by examiner]
US 20120073916A1 · Chen · 2012 [cited by examiner]
US 20130192934A1 · Knop · 2013 [cited by examiner]
US 20180001878A1 · Thomas · 2018 [cited by examiner]
US 20180045255A1 · Chelaidite · 2018 [cited by examiner]
JP 2016050629A · 2016 [cited by applicant]
JP 2018184093A · 2018 [cited by applicant]