IP Library Granted Patent US 9,518,625
Granted Patent B2
US 9,518,625 · App. 14/784,411 · Granted Dec 13, 2016

Method for actuating an electrically actuated friction brake

Inventor: Michael Putz (Sebersdorf, AT)
Assignee: VE VIENNA ENGINEERING FORSCHUNGS-UND ENTWICKLUNGS GMBH
F16D65/18B60T13/065B60T13/741F16D55/16F16D2121/14F16D2121/24F16D2125/28
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Quick Facts
Patent No.
US 9,518,625
App. No.
14/784,411
Granted
Dec 13, 2016
Kind
B2
Abstract

To be able to selectively influence the braking effect of a friction brake ( 1 ) in a certain operating point to be able to reliably and easily achieve regulation or control of a required setpoint braking effect of the friction brake ( 1 ), it is proposed to determine an actuation energy (E E ) of the electric motor ( 21 ) for the braking operation, and to determine the ascertained actuation energy (E E ) as the actual actuation energy (E E _ actual ) in the predefined setpoint position of the friction brake ( 1 ), and to determine a setpoint actuation energy (E E _ setpoint ) with respect to the setpoint position or with respect to a setpoint braking effect from known data concerning the friction brake ( 1 ), and to compensate for a deviation between the actual actuation energy (E E _ actual ) and the setpoint actuation energy (E E _ setpoint ) by actuating the friction brake ( 1 ).

Claims (11)

1. Method for actuating an electrically actuated friction brake ( 1 ) that is driven by an electric motor ( 21 ), in which for a braking operation, in order to achieve a predefined setpoint braking effect of the friction brake ( 1 ), a brake lining ( 3 , 6 ) is pressed against a friction surface by setting a setpoint position of the friction brake ( 1 ) that is associated with the setpoint braking effect, characterized in that an actuation energy (EE) of the electric motor ( 21 ) is determined for the braking operation, and the ascertained actuation energy (EE) is determined as the actual actuation energy (EE_actual) in the predefined setpoint position of the friction brake ( 1 ), and a setpoint actuation energy (EE_setpoint) is determined with respect to the setpoint position or with respect to a setpoint braking effect from known data concerning the friction brake ( 1 ), and a deviation between the actual actuation energy (EE_actual) and the setpoint actuation energy (EE_setpoint) is compensated for by actuating the friction brake ( 1 ).

2. Method according to claim 1 , characterized in that at the end of the braking operation the friction brake ( 1 ) is actuated for compensating for the deviation between the actual actuation energy (EE_actual) and the setpoint actuation energy (EE_setpoint) in order to achieve the setpoint braking effect.

3. Method according to claim 1 , characterized in that the deviation is compensated for by changing the setpoint position.

4. Method according to claim 1 , characterized in that an actual braking effect and a setpoint braking effect are determined from the actual actuation energy (EE_actual) and the setpoint actuation energy (EE_setpoint), respectively, and a deviation between the actual braking effect and a setpoint braking effect is compensated for.

5. Method according to claim 1 , characterized in that a wear adjuster ( 11 ) of the friction brake ( 1 ) is actuated at the end of the braking operation in order to change an air gap as a function of the deviation between the actual actuation energy (EE_actual) and the setpoint actuation energy (EE_setpoint).

6. Method according to claim 1 , characterized in that a wear adjuster ( 11 ) of the friction brake ( 1 ) is actuated after a certain time period after the braking operation in order to change an air gap as a function of the deviation between the actual actuation energy (EE_actual) and the setpoint actuation energy (EE_setpoint).

7. Method according to claim 6 , characterized in that deviations which occur are averaged over this time period.

8. Method according to claim 1 , characterized in that for the braking operation, an energy absorption capacity (EV) of the friction brake ( 1 ) is determined prior to achieving a setpoint position or setpoint braking effect, from a known motor braking energy (EB) of the electric motor ( 21 ) and the actuation energy (EE), and during the braking operation the instantaneous kinetic energy (EK) of the electric motor ( 21 ) is compared to the energy absorption capacity (EV) associated with the instantaneous position or braking effect, and when the two match, the electric motor ( 21 ) is switched over to deceleration in order to influence the time sequence of the braking effect for achieving the setpoint position or the setpoint braking effect.

9. Method according to claim 8 , characterized in that a desired residual speed of the actuation is maintained at the end of the braking operation.

10. Method according to claim 1 , characterized in that the friction brake ( 1 ) is driven by a combination of the electric motor ( 21 ) and an auxiliary energy source ( 32 ), the proportion of the auxiliary energy source ( 32 ) being in the range of 0 to 100%, preferably 20 to 100%.

11. Method according to claim 1 , characterized in that the friction brake ( 1 ) is operated on a vehicle wheel, and the setpoint braking effect is limited to a stored, from current roadway conditions dependent, lock-free braking effect, with which locking of the vehicle wheel is prevented.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 21, 2023
From: VE VIENNA ENGINEERING FORSCHUNGS- UND ENTWICKLUNGS GMBH
To: ROBERT BOSCH GMBH
Reel/Frame 064335/0980 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 19, 2015
From: PUTZ, MICHAEL
To: VE VIENNA ENGINEERING FORSCHUNGS-UND ENTWICKLUNGS GMBH
Reel/Frame 037092/0303 →
Priority Claims (1)
AT A50257/2013 · Apr 15, 2013 · national
Continuity (1)
Related Publication 20160053839A1 · Feb 25, 2016