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Modelling of ionic polymer-metal composites by a multi-field finite element method

机译:离子聚合物-金属复合材料的多场有限元建模

摘要

Ionic polymer-metal composites (IPMCs), a new type of smart material, offer the attractive features of high sensitivity and light weight for developing novel designs in the fields of dynamic sensors, robotic actuators and artificial muscles. The non-linear water molecule diffusion resistance force exists in the process of sodium ion migration, which may cause a significant effect on the dynamic electro-mechanical properties of this kind of material. In this paper, Tadokoro's model constructed by taking the electrostatic force, the viscous resistance force, the sodium ion diffusion force, and the water molecule diffusion resistance force into account was applied for simulation of electro-mechanical properties of IMPC. By coupling these forces and based on the principle of internal force equilibrium and the laws of motion, a multi-field finite element method (MFFEM) was derived using the dynamic electro-mechanical model, and a numerical solving scheme was proposed. Using the MFFEM, the electro-active behaviours of an IPMC beam have been simulated and discussed. The simulation results show that the water molecule diffusion resistance force has various effects on an IPMC beam, such as the water concentration, charge density of sodium ions and internal equilibrium forces. Furthermore, MFFEM has also been applied to study the migration speed of the hydrated sodium ions, electric-field intensity and bending displacement distribution across the thickness direction of the IPMC beam. Compared with the experimental findings reported by other investigators, it has been demonstrated that the proposed method provided a more realistic and scientific way to predict the electro-mechanical behaviours of IPMC by introduction of the non-linear force component in the model. Hence, the accuracy of prediction may also be improved and more information may be provided for developing new IPMC devices.
机译:离子聚合物金属复合材料(IPMC)是一种新型的智能材料,具有动态灵敏度高,重量轻的诱人特性,可用于开发动态传感器,机器人致动器和人造肌肉领域的新颖设计。钠离子迁移过程中存在非线性的水分子扩散阻力,这可能会对这种材料的动态机电性能产生重大影响。本文将考虑静电力,粘性阻力,钠离子扩散力和水分子扩散阻力的Tadokoro模型应用于IMPC的机电性能模拟。通过将这些力耦合,并基于内力平衡原理和运动规律,利用动态机电模型推导了一种多场有限元方法,并提出了数值求解方案。使用MFFEM,已经模拟和讨论了IPMC束的电活性行为。仿真结果表明,水分子的扩散阻力对IPMC束具有多种影响,如水浓度,钠离子的电荷密度和内部平衡力。此外,MFFEM还被用于研究水合钠离子的迁移速度,电场强度以及在IPMC束厚度方向上的弯曲位移分布。与其他研究者报告的实验结果相比,已证明,该方法通过在模型中引入非线性力分量,为预测IPMC的机电行为提供了更现实,更科学的方法。因此,还可以提高预测的准确性,并且可以提供更多信息来开发新的IPMC设备。

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