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Boundary-Condition Analysis for Physics-Based Modeling of Ionic-Polymer-Metal-Composite Electroactive Polymers

机译:离子-聚合物-金属复合电活性聚合物基于物理建模的边界条件分析

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Ionic-polymer metal composites (IPMCs) are a subset of ionic electroactive polymers (EAPs). They produce an actuation response based on the electrically induced flux of mobile ions through a parent-polymer matrix. This response is a result of the accumulation of cations and anions on opposing sides of the matrix and is directly related to the size disparity between the two types of ions. These factors impose a differential expansion across the matrix, which generates the macroscopic bending that is observed. It is well known that the motion of these EAPs is highly nonlinear and time dependent, making for a process that is difficult to model. A simplistic approach to modeling the physics behind this phenomenon and correlating that to experimental results is outlined, herein. This new methodology enables a comprehensive analysis of the boundary conditions (BCs) needed to be considered in order to accurately characterize the IPMC actuation response. The subsequent series of equations developed, which depict the ionic motion under these BCs, is presented. Empirical data for model analysis was acquired from IPMCs created using poly(ethylene oxide) (PEO), a well-known, biodegradable, solid-polymer electrolyte infused with lithium perchlorate, as the ionic salt. Experimental results fitted with this new model returned a favorable average adjusted-R2, goodness-of-fit, of 0.987, 0.994, and 0.992 when PEO films were tested under varying conditions, including: ionic concentration, applied voltage, and testing temperature, respectively.
机译:离子聚合物金属复合材料(IPMC)是离子电活性聚合物(EAP)的子集。它们基于流动离子通过母体聚合物基体的电感应通量产生致动响应。该响应是阳离子和阴离子在基质相对侧上积累的结果,并且与两种类型离子之间的尺寸差异直接相关。这些因素在整个基质上施加了不同的膨胀,从而产生了观察到的宏观弯曲。众所周知,这些EAP的运动是高度非线性的并且与时间有关,这导致了难以建模的过程。本文概述了一种简单的方法,用于对这种现象背后的物理现象进行建模,并将其与实验结果相关联。这种新方法可以对需要考虑的边界条件(BC)进行全面分析,以准确表征IPMC致动响应。介绍了随后开发的一系列方程,这些方程描述了这些BCs下的离子运动。用于模型分析的经验数据是从使用聚环氧乙烷(PEO)创建的IPMC中获得的,聚环氧乙烷(PEO)是一种众所周知的,可生物降解的,注入高氯酸锂作为离子盐的固体聚合物电解质。当在不同条件下测试PEO膜时,装有该新模型的实验结果得出的平均调整R2,拟合优度分别为0.987、0.994和0.992,分别包括:离子浓度,施加电压和测试温度。

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