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Electromechanical fatigue in IPMC under dynamic energy harvesting conditions

机译:动态能量收集条件下IPMC中的机电疲劳

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Ionic polymer-metal composites (IPMCs) are an interesting subset of smart, multi-functional materials that have shown promises in energy conversion technologies. Being electromechanically coupled, IPMCs can function as dynamic actuators and sensors, transducers for energy conversion and harvesting, as well as artificial muscles for medical and industrial applications. Like all natural materials, even IPMCs undergo fatigue under dynamic load conditions. Here, we investigate the electromechanical fatigue induced in the IPMCs due to the application of cyclic mechanical bending deformation under hydrodynamic energy harvesting condition. Considering the viscoelastic nature of the IPMC, we employ an analytical approach to modeling electromechanical fatigue primarily under the cyclic stresses induced in the membrane. The polymer-metal composite undergoes cyclic softening throughout the fatigue life without attaining a saturated state of charge migration. However, it results in (1) degradation of electromechanical performance; (2) nucleation and growth of microscopic cracks in the metal electrodes; (3) delamination of metal electrodes at the polymer-electrode interface. To understand these processes, we employ a phenomenological approach based on experimentally measured relaxation properties of the IPMC membrane. Electromechanical performance improves significantly with self-healing like properties for a certain range of relaxation time. This is due to reorientation of the backbone polymer chains which eventually leads to a regenerative process with increased charge transport.
机译:离子聚合物金属复合材料(IPMC)是智能多功能材料的一个有趣子集,这些材料已在能量转换技术中显示出了希望。通过机电耦合,IPMC可以用作动态执行器和传感器,用于能量转换和收集的换能器,以及用于医疗和工业应用的人造肌肉。像所有天然材料一样,即使IPMC也会在动态负载条件下遭受疲劳。在这里,我们研究了在水动力能量收集条件下由于循环机械弯曲变形的应用而在IPMC中引起的机电疲劳。考虑到IPMC的粘弹性,我们采用一种分析方法来模拟机电疲劳,主要是在膜中引起的循环应力下进行。聚合物-金属复合材料在整个疲劳寿命中都会经历循环软化,而不会达到电荷迁移的饱和状态。但是,这导致(1)机电性能下降; (2)金属电极中微小裂纹的成核和生长; (3)金属电极在聚合物-电极界面处分层。为了理解这些过程,我们采用了一种基于现象学方法的方法,该方法基于IPMC膜的实验测量松弛特性。在一定的松弛时间范围内,具有类似自我修复的性能,机电性能会显着提高。这归因于主链聚合物链的重新定向,最终导致再生过程的电荷传输增加。

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