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research article

Optimization of the force and power consumption of a microfabricated magnetic actuator

Zarate, Juan José  
•
Tosolini, Giordano
•
Petroni, Simona
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2015
Sensors and Actuators A: Physical

The force (F) and the power consumption (P ) of a magnetic actuator are modeled, measured and optimized in the context of developing micro-actuators for large arrays, such as in portable tactile displays for the visually impaired. We present a novel analytical approach complemented with finite element simulation (FEM) and experiment validation, showing that the optimization process can be performed considering a single figure of merit. The magnetic actuator is a disc-shaped permanent magnet displaced by planar microcoil. Numerous design parameters are evaluated, including the width and separation of the coil traces, the trace thickness, number of turns and the maximum and minimum radius of the coil. We obtained experimental values ranging from 2 to 12 mN/ sqrt(W) using up to 2-layer coils of both microfabricated and commercial printed circuit board (PCB) technologies. This performance can be further improved by a factor of two by adopting a 6-layer technology. The method can be applied to a wide range of electromagnetic actuators.

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Type
research article
DOI
10.1016/j.sna.2015.08.007
Web of Science ID

WOS:000363826400008

Author(s)
Zarate, Juan José  
Tosolini, Giordano
Petroni, Simona
Vittorio, Massimo De
Shea, Herbert  
Date Issued

2015

Publisher

Elsevier

Published in
Sensors and Actuators A: Physical
Volume

234

Start page

57

End page

64

Subjects

Planar coil

•

Permanent magnet

•

Magnetic actuator

•

Power consumption

•

Tactile display

•

Haptic technology

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LMTS  
Available on Infoscience
August 26, 2015
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/117362
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