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A dynamic model for ionic polymer-metal composite sensors

机译:离子聚合物金属复合传感器的动力学模型

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摘要

A dynamic, physics-based model is presented for ionic polymer-metal composite (IPMC) sensors. The model is an infinite-dimensional transfer function relating the short- circuit sensing current to the applied deformation. It is obtained by deriving the exact solution to the governing partial differential equation (PDE) for the sensing dynamics, where the effect of distributed surface resistance is incorporated. The PDE is solved in the Laplace domain, subject to the condition that the charge density at the boundary is proportional to the applied stress. The physical model is expressed in terms of fundamental material parameters and sensor dimensions and is thus scalable. It can be easily reduced to low- order models for real- time conditioning of sensor signals in targeted applications of IPMC sensors. Experimental results are provided to validate the proposed model.
机译:提出了一种基于物理的动态模型,用于离子聚合物-金属复合材料(IPMC)传感器。该模型是将短路检测电流与所施加的变形相关联的无穷维传递函数。它是通过为控制动力学导出控制偏微分方程(PDE)的精确解而获得的,其中结合了分布式表面电阻的影响。在边界位置的电荷密度与施加应力成比例的条件下,在拉普拉斯域中求解PDE。物理模型以基本材料参数和传感器尺寸表示,因此可扩展。可以轻松地将其简化为低阶模型,以在IPMC传感器的目标应用中实时调节传感器信号。提供实验结果以验证所提出的模型。

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