Title :
Magnetostatic MEMS relays for the miniaturization of brushless DC motor controllers
Author :
Wright, J.A. ; Yu-Chong Tai
Author_Institution :
California Inst. of Technol., Pasadena, CA, USA
Abstract :
Magnetostatic MEMS relays which are capable of commutating the field windings of a DC brushless motor are presented. The commutation system based on these relays is less than 10% the mass and volume of the electronics it replaces, it eliminates all but two wires from the wiring harness, it requires no external control and it dissipates less than 1/1000 th the total motor power. Closure forces greater than 5 millinewton are generated in the relays providing four-wire contact resistance readings of less than 35 milliohms. Utilizing gold-to-gold contacts, hot switching of currents greater than 1 amp has been demonstrated. For lifetimes greater than 10 million cycles (greater than 50 hours of continuous motor operation), switched currents should be limited to less than 120 milliamp. At signal levels of less than 1 milliamp, no failure is seen after greater than half a billion cycles. No contact bounce is seen during make or break. Motor commutation in vacuum down to 5 microtorr and from room temperature down to -30/spl deg/C has been demonstrated.
Keywords :
DC motor drives; brushless DC motors; commutation; contact resistance; electromagnetic actuators; machine control; machine windings; microactuators; relays; 120 mA; 20 to -30 C; 5 mtorr; brushless DC motor controllers; closure forces; commutation system; fabrication; field windings; four-wire contact resistance; gold-to-gold contacts; hot switching of currents; magnetostatic MEMS relays; miniaturization; motor commutation in vacuum; space qualified hardware; Brushless motors; Commutation; Control systems; Magnetostatics; Micromechanical devices; Power system relaying; Relays; Weight control; Wires; Wiring;
Conference_Titel :
Micro Electro Mechanical Systems, 1999. MEMS '99. Twelfth IEEE International Conference on
Conference_Location :
Orlando, FL, USA
Print_ISBN :
0-7803-5194-0
DOI :
10.1109/MEMSYS.1999.746895