Multi-Segment State Coordination for Reducing Latency Time of Shape Memory Alloy Actuator Systems

B. Selden, Kyu-Jin Cho, H. Asada
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引用次数: 8

Abstract

This paper describes a new approach to the control of highly nonlinear shape memory alloy (SMA) actuator systems, in which SMA wires are divided into many segments and their thermal states are controlled individually as a group of finite state machines. Instead of driving a current to the entire SMA wire and controlling the wire length based on the analogue strain-temperature characteristics, the new method controls the discrete state (austenite or martensite) of individual segments and thereby controls the total displacement proportional to the number of the austenite segments. Although the inherent property of SMA is highly nonlinear and uncertain with a prominent hysteresis, this Hysteresis Loop Control is robust and stable, providing characteristics similar to a stepping motor. Furthermore, this method can apparently eliminate the latency time associated with phase transition of SMA actuators. Coordination of the multitude of segments having independent thermal states allows for fast response with zero latency time even for thick SMA wires. The new control method is implemented using the Peltier effect thermoelectric devices for selective segment-by-segment heating and cooling. Experiments demonstrate effectiveness of the proposed method, which exploits the inherent hysteresis and nonlinearity of SMA rather than compensating for the nonlinearity.
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减少形状记忆合金作动器系统延迟时间的多段状态协调
本文提出了一种高度非线性形状记忆合金(SMA)致动器系统的控制新方法,该方法将SMA导线分成许多段,并将其热状态作为一组有限状态机进行单独控制。新方法不是驱动电流到整个SMA导线,并根据模拟应变-温度特性控制导线长度,而是控制单个区段的离散状态(奥氏体或马氏体),从而控制与奥氏体区段数量成比例的总位移。尽管SMA的固有特性是高度非线性和不确定的,并且具有明显的滞后,但这种滞回环控制具有鲁棒性和稳定性,提供类似步进电机的特性。此外,该方法可以明显地消除与SMA致动器相变相关的延迟时间。具有独立热状态的众多段的协调允许快速响应,即使对于粗SMA电线也是零延迟时间。新的控制方法是利用珀尔帖效应热电器件实现选择性分段加热和分段冷却。实验证明了该方法的有效性,该方法利用了SMA固有的滞后和非线性,而不是对非线性进行补偿。
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