首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >Tunable layered composites based on magnetoactive elastomers and piezopolymer for sensors and energy harvesting devices
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Tunable layered composites based on magnetoactive elastomers and piezopolymer for sensors and energy harvesting devices

机译:基于磁体弹性体和压电聚合物的可调谐分层复合材料,用于传感器和能量收集装置

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摘要

The novel layered structures comprising piezoelectric polymer and magnetoactive elastomer (MAE) were developed and investigated. The influence of iron particles content in the elastomeric layer, its thickness and Young's modulus of silicone on the multiferroic properties of the structures were analyzed. The investigation included the experimental and numerical characterization of the magnetoelectric effect. The giant values of bending deformations of MAEs in the external gradient magnetic field led to giant values of induced voltage (up to nearly 650 mV) in the composite. The displacement of ferromagnetic particles inside the elastomeric matrix under gradient magnetic field became the main basis for numerical modelling. The molecular dynamic method, 'virtual springs' method and Verlet algorithm were used to obtain the results of the numerical experiment. The energy transformation and magnetic field response in the novel composite allow it to be used in sensors and energy-harvesting devices.
机译:开发和研究了由压电聚合物和磁活性弹性体(MAE)组成的新型层状结构。分析了弹性体层中铁颗粒含量、厚度和硅橡胶杨氏模量对结构多铁性的影响。研究包括磁电效应的实验和数值表征。MAEs在外梯度磁场中弯曲变形的巨大值导致复合材料中感应电压的巨大值(高达近650 mV)。在梯度磁场作用下,弹性体基体中铁磁性颗粒的位移成为数值模拟的主要依据。采用分子动力学方法、“虚拟弹簧”方法和Verlet算法获得了数值实验结果。这种新型复合材料的能量转换和磁场响应使其能够用于传感器和能量收集装置。

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