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首页> 外文期刊>International journal of applied mechanics >The Effect of Dielectric Polarization Rate Difference of Filler and Matrix on the Electrorheological Responses of Poly(ionic liquid)/Polyaniline Composite Particles
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The Effect of Dielectric Polarization Rate Difference of Filler and Matrix on the Electrorheological Responses of Poly(ionic liquid)/Polyaniline Composite Particles

机译:填料和基质介电学偏振率差差对聚(离子液体)/聚苯胺复合颗粒电感应的影响

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摘要

By using different conductivity of polyaniline as filler, a kind of poly(ionic liquid)/polyaniline composite particles was synthesized to investigate the influence of dielectric polarization rate difference between filler and matrix on the electrorheological response and flow stability of composite-based electrorheological fluids under simultaneous effect of shear and electric fields. The composite particles were prepared by a post ion-exchange procedure and then treated by ammonia or hydrazine to obtain different conductivity of polyaniline. Their electrorheological response was measured by dispersing these composite particles in insulating carrier liquid under electric fields. It showed that the composite particles treated by ammonia had the strongest electrorheological response and most stable flow behavior in a broad shear rate region from 0.5 s(-1) to 1000 s(-1). By using dielectric spectroscopy, it found that the enhanced electrorheological response with stable flow depended on the matching degree of the dielectric polarization rates between poly(ionic liquid) matrix and polyaniline filler. The closer their polarization rates are, the more stable the flow curves are. These results are helpful to design optimal composite-based electrorheological materials with enhanced and stable ER performance.
机译:通过使用不同的聚苯胺电导率作为填料,合成了一种聚(离子液体)/聚苯胺复合颗粒,以研究填料与基质之间的介电偏振速率差对基于复合材料的电气响应和流动稳定性的影响剪切和电场的同时效果。通过后离子交换程序制备复合颗粒,然后通过氨或肼处理,得到不同的聚苯胺的不同导电性。通过将这些复合颗粒分散在电场下的绝缘载体液中来测量它们的电流反应。它表明,通过氨处理的复合颗粒具有最强的电静电反应,宽剪切速率区域的最强的电流反应和最稳定的流动性,从0.5 s(-1)至1000 s(-1)。通过使用介电光谱,发现具有稳定流动的增强的电流响应依赖于聚(离子液体)基质和聚苯胺填料之间的介电偏振速率的匹配程度。它们的极化速率越接近,流量曲线越稳定。这些结果有助于设计具有增强且稳定的ER性能的最佳复合材料的电风学材料。

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