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Investigating new symmetry classes in magnetorheological elastomers: Cantilever bending behavior

机译:研究磁流变弹性体中的新对称性类别:悬臂弯曲行为

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This work defines and examines four classes of magnetorheological elastomers (MREs) based upon permutations of particle alignment-magnetization pairs. Particle alignments may either be unaligned (e.g.random) or aligned. Particle magnetizations may either be soft-magnetic or hard-magnetic. Together, these designations yield four material types: A-S, U-S, A-H, and U-H. Traditional MREs comprise only the A-S and U-S classes. Samples made from 325-mesh iron and 40νm barium hexaferrite powders cured with or without the presence of a magnetic field served as proxies for the four classes. Cantilever bending actuating tests measuring the magnetically-induced restoring force at the cantilever tip on 50mm × 20mm × 5mm samples yielded ~ 350mN at μ_0H = 0.09T for classes A-H, A-S, and U-S while class U-H showed only ~ 40mN. Furthermore, while classes U-S and A-S exerted forces proportional to tip deflection, they exerted no force in the undeformed state whereas class A-H exerted a relatively constant tip force over its entire range of deformation. Beam theory calculations and models with elastic strain energy density coupled with demagnetizing effects in the magnetic energy density were used to ascertain the magnitude of the internal bending moment in the cantilever and to predict material response with good results. This work highlights the ability of the newly developed A-H MRE materials, and only that material class, to operate as remotely powered bidirectional actuators.
机译:这项工作基于粒子排列-磁化对的排列,定义并检查了四类磁流变弹性体(MRE)。粒子排列可能是未排列的(例如随机)或排列的。粒子磁化强度可以是软磁或硬磁。这些名称加在一起产生四种材料类型:A-S,U-S,A-H和U-H。传统的MRE仅包含A-S和U-S类。用325目铁和40vm六价铁酸钡粉末制成的样品在有或没有磁场的情况下固化,可作为这四类的代理。对于A-H,A-S和U-S级,在50mm×20mm×5mm样品上测量悬臂尖端的磁感应恢复力的悬臂弯曲致动试验在μ_0H= 0.09T时产生〜350mN,而U-H类仅显示〜40mN。此外,虽然U-S和A-S类施加的力与尖端挠度成比例,但它们在未变形状态下不施加力,而A-H类在其整个变形范围内均施加相对恒定的尖端力。结合弹性应变能密度和磁能密度中的退磁作用的梁理论计算和模型,可以确定悬臂内部弯矩的大小,并预测材料响应,从而获得良好的结果。这项工作突出了新开发的A-H MRE材料(仅该材料类别)作为远程双向执行器的能力。

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