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电流变液研究进展

The research progress of electrorheological fluids

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【作者】 徐志超; 伍罕; 张萌颖; 巫金波; 温维佳;

【Author】 XU ZhiChao;WU Han;ZHANG MengYing;WU JinBo;WEN WeiJia;Materials Genome Institute,Shanghai University;Department of Physics,College of Sciences,Shanghai University;Department of Physics,Hong Kong University of Science and Technology;

【机构】 上海大学材料基因组工程研究院智能材料及应用技术研究所; 上海大学理学院物理系; 香港科技大学物理系;

【摘要】 在电流变液发明后的70余年中,学者们相继提出了纤维理论、"水桥"理论、双电层理论和介电理论等传统理论模型.然而,力学性能较差,严重制约了电流变液的工程化应用.近几年,随着巨电流变液和极性型电流变液等低场高屈服强度的新型电流变液的发明,电流变液屈服强度均超过了100 k Pa,电流变液迎来了一个新的工业化应用契机.但是,电流变液的沉降性及再分散性等基础性和应用性问题仍然制约了其广泛应用.本文回顾了电流变液的成分、宏观性质、微观机制及其应用的发展,重点分析了巨电流变效应及其在智能微流控中的研究.总结了电流变液的研究现状及未来发展方向,其中对电流变液稳定性和服役与失效的研究将成为未来研究的主要方向.随着上述问题的解决完善将加速电流变液的工业化进程.

【Abstract】 Electrorheological(ER) fluids are such smart materials whose rheological properties(yield stress, viscosity, etc.) can be reversibly and continuously controlled using an external electric field. They are colloids composing of dielectric particles and insulating liquids. They switch from a liquid-like state to a solid-like state within a millisecond with the aid of an electric field, which is called the ER effect. ER fluids can therefore be used as electrical and mechanical interfaces in various industries, including the fast acting valves, clutches, brakes, shock absorbers, accurate polishing, robotics and tactile displays. Since the ER effect was first described by Winslow in 1949, ER fluids show a promising prospect in the application in various industries and a great deal of research interest in ER fluids and ER devices has been stimulated. A large body of literature on ER fluids, the mechanism of the ER effect, and the design of industrial applicable ER devices has been published. In the meantime, after the invention of ERF, a number of theories are put forward, such as Fibrillation Theory, "Water Bridge" Theory, Double layer Theory, Particle Polarization Theory and so on. Ma et al. calculated that the theoretical upper bound on conventional ER static yield stress is 10 k Pa based on first-principles calculations. The highest yield strength of the dielectric electrorheological fluid obtained by Lu et al. in the experiment is 5 k Pa. However, electrorheological fluids are not industrialized practically because of the low yield strength. In recent years, Wen developed giant electrorheological fluid that can reach a yield strength of 130 k Pa, breaking the theoretical upper bound of traditional ER static yield stress. Later, Lu invented polar-molecule-dominated electrorheological fluids whose solid state can reach yield strength of 200 k Pa. With the inventions of the giant electrorheological fluid and polar-molecule-dominated electrorheological fluids with high yield stress under low electric field, there is a new opportunity for ER fluids to apply to the industrial application because their yield strength of the new kind of ER fluids is more than 40 k Pa, the lowest practical limit. However, the problems about sedimentation and redispersibility of electrorheological fluids still restrict its wide application. With the research of surfactant and the development of the hollow multilayer porous nano particles, the stability of electrorheological fluids has greatly improved. This paper focuses on the study of the giant electrorheological fluid and its application in smart microfluidics. Specifically, it gives a detailed introduction of micropumps and micro-valves and smart electroresponsive droplets in microfluidics based on giant electrorheological fluids. This paper also offers a review of the composition, macroscopic properties, microscopic mechanism and applications of electrorheological fluids, as well as a summary of its current research status and its future development. Research of the stability and service life of electrorheological fluids will definitely be the most popular topic in the future, thus accelerating the progress of industrialization with the settlement of the issues discussed above.

【基金】 上海市科学技术委员会基金(15JC1400303)资助
  • 【文献出处】 科学通报 ,Chinese Science Bulletin , 编辑部邮箱 ,2017年21期
  • 【分类号】TB381
  • 【被引频次】23
  • 【下载频次】1026
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