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An Improved Model for Magnetorheological Fluid-Based Actuators and Sensors

机译:磁流变流体致动器和传感器的改进模型

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The resistance to flow of magnetorheological (MR) fluids is greatly increased by the application of a magnetic field. At present, most devices exploiting this MR fluid behavior are pistons executing straight-line motion. The MR fluids in these devices are subjected to shear flow, and are modeled by either the Bingham plastic or Herschel-Buckley models, both 1D, phenomenological continuum-level forms relating strain rate, magnetic field magnitude, and stress magnitude, and fit to continuum-level empirical measurements. We employ a multiscale model of the MR fluid introduced in an earlier paper, which integrates nanoscale behavior over a mesoscale volume to deduce continuum properties. This approach replaces many of the phenomenological features of the Bingham plastic and Herschel-Buckley models with first principles, and isolates those few phenomenological features that remain into a single scalar term. The model is compared to the Bingham plastic and Herschel-Buckley models, assessing each model's ability to capture the experimentally measured mechanical response of a particular MR fluid-based damper to specified magnetic fields. The result of this comparison is that, our model possesses the flexibility to best match the measured behavior of the MR fluid device observed in our experiments, with fewer required experimental measurements.
机译:磁流变(MR)流体的流动阻力通过施加磁场而大大增加。目前,大多数利用这种MR流体特性的设备都是执行直线运动的活塞。这些设备中的MR流体受到剪切流作用,并通过Bingham塑料模型或Herschel-Buckley模型进行建模,这两种模型都是与应变率,磁场大小和应力大小相关的一维现象学连续体水平形式,并且适合于连续体水平的经验测量。我们采用了在较早的论文中介绍的MR流体的多尺度模型,该模型在中尺度体积上集成了纳米尺度的行为,以推论出连续体的性质。这种方法用第一原理代替了宾厄姆可塑性模型和Herschel-Buckley模型的许多现象学特征,并分离了保留在单个标量项中的少数现象学特征。将模型与Bingham塑料模型和Herschel-Buckley模型进行比较,评估每种模型捕获特定MR流体阻尼器对指定磁场的实验测量机械响应的能力。进行比较的结果是,我们的模型具有与实验中观察到的MR流体设备的测量行为最佳匹配的灵活性,所需的实验测量更少。

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