Ali Mohamed Sultan Mohamed, AbuZaiter Alaa, Schlosser Colin, Bycraft Brad, Takahata Kenichi
Faculty of Electrical Engineering, Universiti Teknologi Malaysia, Skudai, Johor 81310, Malaysia.
Department of Electrical and Computer Engineering, The University of British Columbia, 2332 Main Mall, Vancouver, BC V6T 1Z4, Canada.
Sensors (Basel). 2014 Jul 10;14(7):12399-409. doi: 10.3390/s140712399.
This paper reports a method that enables real-time displacement monitoring and control of micromachined resonant-type actuators using wireless radiofrequency (RF). The method is applied to an out-of-plane, spiral-coil microactuator based on shape-memory-alloy (SMA). The SMA spiral coil forms an inductor-capacitor resonant circuit that is excited using external RF magnetic fields to thermally actuate the coil. The actuation causes a shift in the circuit's resonance as the coil is displaced vertically, which is wirelessly monitored through an external antenna to track the displacements. Controlled actuation and displacement monitoring using the developed method is demonstrated with the microfabricated device. The device exhibits a frequency sensitivity to displacement of 10 kHz/µm or more for a full out-of-plane travel range of 466 µm and an average actuation velocity of up to 155 µm/s. The method described permits the actuator to have a self-sensing function that is passively operated, thereby eliminating the need for separate sensors and batteries on the device, thus realizing precise control while attaining a high level of miniaturization in the device.
本文报道了一种利用无线射频(RF)实现微机械谐振式致动器实时位移监测与控制的方法。该方法应用于基于形状记忆合金(SMA)的平面外螺旋线圈微致动器。SMA螺旋线圈形成一个电感 - 电容谐振电路,利用外部RF磁场对其进行激励,从而使线圈产生热驱动。当线圈垂直位移时,驱动会导致电路谐振发生偏移,通过外部天线对其进行无线监测以跟踪位移。利用所开发的方法对微制造器件进行了受控驱动和位移监测演示。对于466 µm的全平面外行程范围,该器件表现出对位移的频率灵敏度为10 kHz/µm或更高,平均驱动速度高达155 µm/s。所描述的方法使致动器具有被动操作的自感应功能,从而无需在器件上设置单独的传感器和电池,在实现器件高度小型化的同时实现精确控制。