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首页> 外文期刊>Mechatronics, IEEE/ASME Transactions on >Modeling and Inverse Compensation of Temperature-Dependent Ionic Polymer–Metal Composite Sensor Dynamics
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Modeling and Inverse Compensation of Temperature-Dependent Ionic Polymer–Metal Composite Sensor Dynamics

机译:温度相关离子聚合物-金属复合传感器动力学的建模和逆补偿

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摘要

Ionic polymer–metal composites (IPMCs) have intrinsic sensing capabilities. Like many other sensing materials, however, IPMC sensors demonstrate strong temperature-dependent behaviors. In this paper, we present the first systematic studies on temperature-dependent IPMC sensing dynamics. A cantilevered IPMC beam, soaked in a water bath with controlled temperature, is excited mechanically at its tip. The empirical frequency response of the sensor, with the tip displacement as an input and the short-circuit current as an output, shows a clear dependence on the bath temperature. The sensing dynamics is modeled with a transfer function with temperature-dependent coefficients. By fitting the values of the coefficients at a set of test temperatures, we capture the temperature dependence of the coefficients with polynomial functions, which can be used to predict the sensing dynamics at other temperatures. We also investigate the inversion of the sensing dynamics, for extracting the mechanical signal given the sensor output. A stable but noncausal inversion algorithm is applied to deal with the unstable zeros of the original sensing dynamics. Inversion with finite preview time is further explored to achieve near real-time decoding of the sensor output. Experimental results with both harmonic stimuli and free vibrations have validated the effectiveness of the proposed modeling and inversion schemes for IPMC sensors under different temperatures.
机译:离子聚合物-金属复合材料(IPMC)具有固有的传感功能。像许多其他传感材料一样,IPMC传感器也表现出很强的温度依赖性。在本文中,我们提出了对温度相关的IPMC传感动力学的第一个系统研究。在温度受控的水浴中浸泡的IPMC悬臂梁在其尖端被机械激发。传感器的经验频率响应,尖端位移作为输入,短路电流作为输出,显示出对熔池温度的明显依赖。感测动力学通过传递函数建模,该传递函数具有与温度相关的系数。通过在一组测试温度下拟合系数的值,我们使用多项式函数捕获了系数的温度依赖性,该多项式函数可用于预测其他温度下的感测动态。我们还研究了感应动力学的反演,以便在给定传感器输出的情况下提取机械信号。应用稳定但无因果的反演算法来处理原始感测动力学的不稳定零点。进一步探索具有有限预览时间的反演,以实现传感器输出的近实时解码。谐波刺激和自由振动的实验结果验证了所提出的IPMC传感器在不同温度下建模和反演方案的有效性。

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