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Smart fabric adaptive stiffness for active vibration absorbers

机译:主动减震器的智能织物自适应刚度

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摘要

Unconstrained magnetorheological-elastomers (MRE) experience a stiffness increase and elastomeric deformation in response to an applied magnetic field. An MRE consists of ferromagnetic particles dispersed in a host elastomer matrix. This study considers whether the stiffness change of MRE springs is due to magnetic particle-to-particle interactions or to elastomer deformation. If the stiffening is attributable to magnetic particle interaction, then it should occur even in the absence of the elastomer. To test this hypothesis, a smart fabric consisting of low-carbon steel thread in one direction and nonmagnetic thread in the other was created. Two extension springs were placed in parallel with this smart fabric, and placed in between two iron masses. An electromagnet coil wound about one of the masses provided the source of magnetic field across the smart fabric. The frequency response of the device was measured when the coil was driven by a DC current, at 0.5 Amp increments, from 0 to 4. The device exhibited a 33% increase in stiffness at 4 Amps compared to the stiffness at 0 Amps. While this shift is not as large as shifts observed in MREs, the design was not optimized for iron content, and only had a 0.6% iron content.
机译:不受约束的磁流变弹性体(MRE)会响应于施加的磁场而出现刚度增加和弹性变形。 MRE由分散在主体弹性体基质中的铁磁颗粒组成。这项研究考虑了MRE弹簧的刚度变化是由于磁性颗粒之间的相互作用还是弹性体变形引起的。如果硬化归因于磁性粒子的相互作用,那么即使在没有弹性体的情况下也应发生硬化。为了验证这一假设,创建了一种智能织物,该织物由一个方向的低碳钢线和另一个方向的无磁线组成。两个拉伸弹簧与此智能织物平行放置,并置于两个铁块之间。缠绕在其中一个物体上的电磁线圈为整个智能织物提供了磁场源。当线圈由直流电流以0.5 Amp的增量从0到4进行驱动时,测量了设备的频率响应。与0 Amps时的刚度相比,该设备的刚度增加了33%。尽管这种变化不像MRE中观察到的那样大,但该设计并未针对铁含量进行优化,而铁含量仅为0.6%。

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