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Particle mixtures in magnetorheological elastomers (MREs)

机译:磁流变弹性体(MRE)中的颗粒混合物

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Magnetorheological elastomers (MREs) are state-of-the-art elastomagnetic composites comprised of magnetic particles embedded in an elastomer matrix. MREs offer enormous flexibility given that elastomers are easily molded, provide good durability, exhibit hyperelastic behavior, and can be tailored to provide desired mechanical and thermal characteristics. MRE composites combine the capabilities of traditional magnetostrictive materials with the properties of elastomers, creating a novel material capable of both highly responsive sensing and controlled actuation in real-time. This work investigates the response of MRE materials comprised of varying mixtures of 40 and 10 micron iron particles. Samples are tested in compression yielding a compressive modulus and measure of the shear stiffness via Mooney plots. Samples are also tested using a tunable vibration absorber (TVA) designed specifically for this experiment. The TVA loads the samples in oscillatory shear (10 - 100Hz) under the influence of a magnetic field. In all samples, results show increases in the material's stiffness under the application of a magnetic field as evidenced by the frequency response function of the TVA system. Increases in stiffness of 50% at 0.15T were achieved with samples containing 30%-40 micron particles and 30%-40micron + 2%-10 micron particles. This yields a ratio of over 300%/T. The two-particle MRE appeared not to have reached saturation suggesting further stiffness enhancement was possible beyond the saturated single-particle 40 micron sample. However, this may be a result of the larger iron content. Results also suggest variation in the behavior of two- versus single-particle MRE behavior as evidenced by the shear modulus found in compression, but results are inconclusive. MRE materials made with nanoparticles of hard magnetic barium ferrite show stiffness increases of 70%/T which is comparable to MREs having larger iron particles.
机译:磁流变弹性体(MRE)是由包含嵌入弹性体基质中的磁性颗粒组成的最新的弹性复合材料。 MRE具有极大的灵活性,因为弹性体易于成型,具有良好的耐久性,表现出超弹性,并且可以定制以提供所需的机械和热特性。 MRE复合材料将传统的磁致伸缩材料的功能与弹性体的性能相结合,创造出一种新型材料,能够同时进行高响应感测和可控致动。这项工作研究了由40和10微米铁颗粒的不同混合物组成的MRE材料的响应。对样品进行压缩测试以产生压缩模量,并通过门尼图测量剪切刚度。还使用专门为此实验设计的可调减震器(TVA)对样品进行测试。 TVA在磁场的影响下以振荡剪切(10-100Hz)加载样品。在所有样品中,结果表明在施加磁场的情况下材料的刚度增加,这由TVA​​系统的频率响应函数证明。对于包含30%-40微米颗粒和30%-40微米+ 2%-10微米颗粒的样品,在0.15T下刚度增加了50%。产生的比率超过300%/ T。两粒子MRE似乎尚未达到饱和,这表明可能会超出饱和的单粒子40微米样品而进一步提高刚度。但是,这可能是铁含量较高的结果。结果还表明,压缩中发现的剪切模量证明了两粒子与单粒子MRE行为的差异,但结果尚无定论。用硬磁性钡铁氧体纳米颗粒制成的MRE材料的刚度增加了70%/ T,这与具有较大铁颗粒的MRE相当。

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