DocumentCode :
612552
Title :
Mr-brake with permanent magnet as passive actuator for haptics
Author :
Erol, O. ; Gurocak, H.
Author_Institution :
Sch. of Eng. & Comput. Sci., Washington State Univ., Vancouver, WA, USA
fYear :
2013
fDate :
14-17 April 2013
Firstpage :
413
Lastpage :
418
Abstract :
In haptics applications, fast, stable and crisp force responses are desired. Magnetorheological (MR) brakes are viable actuators for haptics since they provide high torque-to-volume ratios with fast response. However, they tend to be rather large and use high current inputs. The actuator size is mainly affected by two factors: (1) design of the magnetic flux path, and (2) the number of coil turns inside the device. To address these issues, we developed a new MR-brake combining serpentine flux path design and a permanent magnet. The new design also provides a fail-safe feature with the help of the permanent magnet while reducing the actuator size. To the best of our knowledge, this is the first such rotary MR-brake. The design was optimized using the Taguchi optimization method. A prototype was fabricated with 45.5 mm diameter, 63.5 mm length and 2.0 Nm maximum torque output. The prototype was tested to assess its effectiveness as a 1 degree-of-freedom haptic device in virtual wall collision. The smaller new MR-brake provided a crisp torque response and simulated the virtual wall collision successfully.
Keywords :
Taguchi methods; actuators; brakes; haptic interfaces; magnetohydrodynamics; magnetorheology; optimisation; permanent magnets; torque; 1 degree-of-freedom haptic device; Taguchi optimization method; coil turns; crisp force responses; crisp torque response; fail-safe feature; haptic applications; magnetic flux path design; magnetorheological brakes; passive actuator; permanent magnet; rotary MR-brake; serpentine flux path design; torque-to-volume ratio; viable actuator size; virtual wall collision; Actuators; Coils; Fluids; Haptic interfaces; Magnetic flux; Permanent magnets; Torque; MR fluid; MR-brake; VR; force feedback; haptics; magnetorheological; permanent magnet; virtual reality;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
World Haptics Conference (WHC), 2013
Conference_Location :
Daejeon
Print_ISBN :
978-1-4799-0087-9
Type :
conf
DOI :
10.1109/WHC.2013.6548444
Filename :
6548444
Link To Document :
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