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Experimental validation of a magnetorheological energy absorber design optimized for shock and impact loads

机译:针对冲击和冲击载荷进行了优化的磁流变能量吸收器设计的实验验证

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摘要

A linear stroke adaptive magnetorheological energy absorber (MREA) was designed, fabricated and tested for intense impact conditions with piston velocities up to 8 m s(-1). The performance of the MREA was characterized using dynamic range, which is defined as the ratio of maximum on-state MREA force to the off-state MREA force. Design optimization techniques were employed in order to maximize the dynamic range at high impact velocities such that MREA maintained good control authority. Geometrical parameters of the MREA were optimized by evaluating MREA performance on the basis of a Bingham-plastic analysis incorporating minor losses (BPM analysis). Computational fluid dynamics and magnetic FE analysis were conducted to verify the performance of passive and controllable MREA force, respectively. Subsequently, high-speed drop testing (0-4.5 m s(-1) at 0 A) was conducted for quantitative comparison with the numerical simulations. Refinements to the nonlinear BPM analysis were carried out to improve prediction of MREA performance.
机译:设计,制造并测试了线性冲程自适应磁流变能量吸收器(MREA),以应对活塞速度高达8 m s(-1)的强烈冲击条件。使用动态范围来表征MREA的性能,动态范围定义为最大开启状态MREA力与关闭状态MREA力的比值。为了使在高冲击速度下的动态范围最大化,采用了设计优化技术,以便MREA保持良好的控制权限。 MREA的几何参数是在结合微小损失的Bingham塑性分析(BPM分析)的基础上通过评估MREA性能来优化的。进行了计算流体动力学和磁性有限元分析,以分别验证被动和可控MREA力的性能。随后,进行了高速跌落测试(0 A时为0-4.5 m s(-1)),用于与数值模拟的定量比较。对非线性BPM分析进行了改进,以改善对MREA性能的预测。

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