Title :
Design of a Multidisc Electromechanical Brake
Author :
Farris, Ryan J. ; Goldfarb, Michael
Author_Institution :
Dept. of Mech. Eng., Vanderbilt Univ., Nashville, TN, USA
Abstract :
This paper presents the design of an electrically actuated, proportional brake that provides a significantly greater torque-to-weight ratio than a magnetic particle brake (MPB) (considered a benchmark of the state of the art) without sacrificing other characteristics, such as dynamic range, bandwidth, or electrical power consumption. The multidisc brake provides resistive torque through a stack of friction discs, which are compressed by a dc-motor-driven ball screw. Unlike nearly all other proportional brakes, which operate in a normally unlocked mode, the brake presented here is designed such that it may be configured in either a normally unlocked or normally locked mode. The latter enables lower electrical energy consumption and added safety in the event of electrical power failure in certain applications. Following the device description, experimental data are presented to characterize the performance of the brake. The performance characteristics are subsequently compared to those of a commercially available MPB of comparable size.
Keywords :
DC motors; brakes; magnetic particles; power system faults; power system protection; brake performance; dc-motor-driven ball screw; electrical energy consumption; electrical power failure; electrically actuated proportional brake; friction disc; magnetic particle brake; multidisc electromechanical brake; normally locked mode; resistive torque; torque-to-weight ratio; Control systems; Dynamic range; Electromechanical devices; Friction; Performance evaluation; Torque; Electromechanical brake; friction clutch; magnetic particle brake (MPB); proportional disc brake;
Journal_Title :
Mechatronics, IEEE/ASME Transactions on
DOI :
10.1109/TMECH.2010.2064332