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酞菁钴-Fe_3O_4纳米复合粒子的表征及其电磁流变液的研究 被引量:2
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作者 黄俊 官建国 +2 位作者 金德江 赵素玲 袁润章 《功能材料》 EI CAS CSCD 北大核心 1999年第5期476-478,共3页
制备了粒径为微米级的酞菁钴(CoPc)-Fe3O4纳米复合粒子,并用它与氯化石蜡油组成了活性较高的无水电磁流变(EMR)液,同时用IR、XRD、SEM对(CoPc)-Fe3O4纳米复合粒子进行了表征。结果表明,CoPc在Fe3O4纳米粒子表面形成了单层分... 制备了粒径为微米级的酞菁钴(CoPc)-Fe3O4纳米复合粒子,并用它与氯化石蜡油组成了活性较高的无水电磁流变(EMR)液,同时用IR、XRD、SEM对(CoPc)-Fe3O4纳米复合粒子进行了表征。结果表明,CoPc在Fe3O4纳米粒子表面形成了单层分散层,其阈值(最大单层分散容量)为0.06gCoPcc/g(Fe3O4)。CoPc通过一定程度的化学键作用与Fe3O4纳米粒子形成了有效的复合,提高了其抗氧化能力和稳定性。该EMR液既具有电流变效应又具有磁流变效应,当同时施加电场和磁场时,它表现出显著的协同效应。 展开更多
关键词 酞菁钴 电磁流变流 四氧化三铁 纳米复合离子
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Modeling and characterization of novel magnetorheological(MR) cell with individual currents
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作者 郑佳佳 王新杰 +2 位作者 欧阳青 李延成 王炅 《Journal of Central South University》 SCIE EI CAS CSCD 2015年第7期2557-2567,共11页
Magnetorheological(MR) cell with multi-coil was designed to enlarge the range of controllable transmission torque by increasing the effective length. Individual input current was proposed to maximize its potential for... Magnetorheological(MR) cell with multi-coil was designed to enlarge the range of controllable transmission torque by increasing the effective length. Individual input current was proposed to maximize its potential for reducing power consumption and generating large yield stress. Finite element analysis was performed to analyze magnetic field distribution, based on which a prototype MR cell was fabricated and tested to investigate the performance of various combinations of individual input currents. A good correlation was identified between experimental results and FEA predications. The results show that the power consumption can be reduced to 42.4%, maintaining large transmission torque, by distributing the total current(2 A) to three individual magnetic coils. In addition, optimal results of four input currents considering a multi-objective function are obtained by changing the weighting factor λ. The advantage of this design, such as lower power consumption and more control flexibility, makes it more competitive in engineering applications that require large energy consumption. 展开更多
关键词 magnetorheological(MR) cell multi-coil individual current power consumption optimization
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