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An Accurately Controlled Antagonistic Shape Memory Alloy Actuator with Self-Sensing

机译:具有自感应功能的精确控制的拮抗形状记忆合金执行器

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With the progress of miniaturization, shape memory alloy (SMA) actuators exhibit high energy density, self-sensing ability and ease of fabrication, which make them well suited for practical applications. This paper presents a self-sensing controlled actuator drive that was designed using antagonistic pairs of SMA wires. Under a certain pre-strain and duty cycle, the stress between two wires becomes constant. Meanwhile, the strain to resistance curve can minimize the hysteresis gap between the heating and the cooling paths. The curves of both wires are then modeled by fitting polynomials such that the measured resistance can be used directly to determine the difference between the testing values and the target strain. The hysteresis model of strains to duty cycle difference has been used as compensation. Accurate control is demonstrated through step response and sinusoidal tracking. The experimental results show that, under a combination control program, the root-mean-square error can be reduced to 1.093%. The limited bandwidth of the frequency is estimated to be 0.15 Hz. Two sets of instruments with three degrees of freedom are illustrated to show how this type actuator could be potentially implemented.
机译:随着小型化的发展,形状记忆合金(SMA)致动器具有高能量密度,自感应能力和易于制造的特性,使其非常适合实际应用。本文介绍了一种自感应控制执行器驱动器,该驱动器是使用SMA导线的对对设计的。在一定的预应变和占空比下,两条线之间的应力变得恒定。同时,应变-电阻曲线可最小化加热和冷却路径之间的磁滞间隙。然后通过拟合多项式对两条导线的曲线进行建模,以便可以将测得的电阻直接用于确定测试值与目标应变之间的差异。应变对占空比差异的磁滞模型已被用作补偿。通过阶跃响应和正弦跟踪证明了精确的控制。实验结果表明,在组合控制程序下,均方根误差可以降低到1.093%。频率的有限带宽估计为0.15 Hz。图示了两组具有三个自由度的仪器,以显示如何潜在地实现这种类型的致动器。

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