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Experimental validation of a magnetorheological energy absorber design analysis

机译:磁流变能量吸收器设计分析的实验验证

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摘要

A key challenge when designing linear stroke magnetorheological energy absorbers for high-speed impact is that high piston speeds in linear stroke magnetorheological energy absorbers induce high Reynolds number flows in the magnetic valve of the magnetorheological energy absorber, so that achieving high controllable dynamic range can be a design challenge. So far, the research on magnetorheological energy absorbers has typically assumed that the off-state force increases linearly with piston velocity. But at the higher piston velocities occurring in impact events, the off-state damping exhibits nonlinear velocity squared damping effects. This problem was recognized in our prior work, where it was shown that minor losses are important contributing factors to off-state damping. In this study, a nonlinear analytical magnetorheological energy absorber model is developed based on a Bingham-plastic nonlinear flow model combined with velocity squared dependent minor loss factors. This refined model is denoted as the Bingham-plastic nonlinear flow model with minor losses. From this Bingham-plastic nonlinear flow model with minor losses, an effective design strategy is presented for conventional magnetorheological energy absorbers. The Bingham-plastic nonlinear flow model with minor losses is validated via computational fluid dynamics simulation, so that magnetorheological energy absorber performance can be analytically verified before being manufactured. The magnetorheological energy absorber is fabricated and tested up to an effective piston velocity of 5 m/s by using the high-speed drop tower facility at the GM R&D Center. Comparison of our analysis with measured data is conducted, and the effective design of the magnetorheological energy absorber using the Bingham-plastic nonlinear flow model with minor losses is validated.
机译:设计用于高速冲击的线性行程磁流变能量吸收器时的关键挑战是,线性行程磁流变能量吸收器中的高活塞速度会在磁流变能量吸收器的电磁阀中引起高雷诺数流,从而实现高可控动态范围设计挑战。到目前为止,对磁流变能量吸收器的研究通常假设关闭状态力随活塞速度线性增加。但是,在碰撞事件中出现较高的活塞速度时,关闭状态的阻尼会表现出非线性速度平方阻尼效应。这个问题在我们以前的工作中得到了认可,在该工作中已表明,微小的损耗是造成断态阻尼的重要因素。在这项研究中,基于宾汉塑性非线性流动模型并结合速度平方相关的次要损耗因子,开发了非线性分析磁流变能量吸收器模型。这种改进的模型被称为具有微小损失的宾汉塑性非线性流动模型。通过这种具有微小损耗的Bingham-塑性非线性流动模型,提出了一种针对常规磁流变能量吸收器的有效设计策略。通过计算流体动力学仿真验证了损失较小的宾厄姆塑性非线性流动模型,从而可以在制造之前对磁流变能量吸收器的性能进行分析验证。磁流变能量吸收器是通过使用通用汽车研发中心的高速落塔设备制造并测试的,其有效活塞速度最高为5 m / s。进行了我们的分析与实测数据的比较,并验证了使用Bingham-塑性非线性流动模型且损耗较小的磁流变能量吸收器的有效设计。

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  • 作者单位

    Smart Structures Laboratory, Department of Aerospace Engineering, University of Maryland, College Park, MD, USA;

    Smart Structures Laboratory, Department of Aerospace Engineering, University of Maryland, College Park, MD, USA;

    Smart Structures Laboratory, Department of Aerospace Engineering, University of Maryland, College Park, MD, USA;

    Smart Structures Laboratory, Department of Aerospace Engineering, University of Maryland, 3180 Glenn L. Martin Hall, College Park, MD 20742, USA;

    Research and Development Center, General Motors, Warren, MI, USA;

    Research and Development Center, General Motors, Warren, MI, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Magnetorheological; impact; energy absorber; Bingham plastic; minor losses; drop tests;

    机译:磁流变;影响;能量吸收器宾汉塑料;小损失;跌落测试;

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