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Effect of the elastomer stiffness and coupling agents on rheological properties of magnetorheological elastomers

机译:弹性体刚度和偶联剂对磁流变弹性体流变性能的影响

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The reported studies are related to a new group of intelligent materials, such as magnetorheological elastomers (MREs), which are composites of ferromagnetic particles embedded in elastomer matrix. Studies on fabrication of MREs were carried out using two different polyurethane elastomers as a matrix, ferromagnetic particles and coupling agent. The matrices were differed in elastomer stiffness and hardness. As a ferromagnetic component carbonyl-iron powder with particle size of 6-9 μm was used. Particles were oriented into chains under the external magnetic field of 240 kA/m. Samples with anisotropic particles arrangement and particles volume fraction equal to 11.5% were examined. Microstructure of MREs was observed using Scanning Electron Microscopy. Structural and magnetic anisotropy of the MREs was derived from the magnetic studies. Rheological properties of the MREs, such as storage and loss modulus and loss factor, were characterized as a function of shear frequency and strength of the magnetic field. Absolute and relative magnetorheological effects were calculated taking the microstructure into account, which was formed in the course of the MRE fabrication, by changing the elastomer type and application of the coupling agent. As a result of the studies it was found that the MREs with stiffer matrix exhibit much lower MR effect than the soft ones. Also the application of coupling agent lead to a decrease of MR effect by the formation of bound elastomer surrounding the particles, which increases the stiffness of the matrix.
机译:报道的研究与一组新的智能材料有关,例如磁流变弹性体(MRE),它们是嵌入弹性体基质中的铁磁颗粒的复合物。使用两种不同的聚氨酯弹性体作为基质,铁磁颗粒和偶联剂对MRE的制备进行了研究。基质的弹性体刚度和硬度不同。作为铁磁性成分,使用粒径为6〜9μm的羰基铁粉。在240 kA / m的外部磁场下,粒子定向成链。检查具有各向异性颗粒排列且颗粒体积分数等于11.5%的样品。使用扫描电子显微镜观察MRE的微观结构。 MRE的结构和磁各向异性来自于磁学研究。 MRE的流变特性,例如储能,损耗模量和损耗因子,是剪切频率和磁场强度的函数。考虑到在MRE制造过程中形成的微观结构,通过改变弹性体类型和偶联剂的使用,可以计算出绝对和相对的磁流变效应。研究的结果是,发现具有较硬基质的MRE的MR效应比软基质的MR效应低得多。同样,偶联剂的应用通过围绕颗粒形成结合的弹性体而导致MR效应的降低,这增加了基体的刚度。

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