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首页> 外文期刊>Smart Materials & Structures >Design optimization of a bi-fold MR energy absorber subjected to impact loading for skid landing gear applications
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Design optimization of a bi-fold MR energy absorber subjected to impact loading for skid landing gear applications

机译:双折叠器能量吸收器的设计优化对抗载荷造成抗冲击件的影响

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摘要

Dynamic range is an important characteristic index to evaluate the performance of magnetorheological energy absorbers (MREAs). In high-speed impact, the dynamic range may fall into the uncontrollable zone due to the increase in the off-state damping force. This is attributed to the transition of the flow from laminar to turbulent state. Thus, it is important to design optimize the MREA to maintain high controllability. To accurately evaluate the damping force, Bingham plastic model with minor loss factors (BPM) has been utilized to formulate the problem. The magneto-static analysis of the MREA valve has been conducted analytically and using magnetic finite element analysis in order to obtain the induced magnetic flux in the MR fluid active gap region against the applied current. Then, using BPM, a design optimization problem has been formulated to optimally design a bi-fold MREA to maximize its dynamic range at an impact velocity of 5 m s(-1) while satisfying the constraints. Both genetic algorithm and sequential quadratic programming methods are utilized to capture the accurate global optimal solution. Finally, the performance of the optimized bi-fold MREA is evaluated first under different impact velocities, input currents, and then compared with that of equivalent single-flow path MREA.
机译:动态范围是评估磁流变能量吸收剂(MRES)的性能的重要特征指标。在高速冲击中,由于断开状态阻尼力的增加,动态范围可能落入无法控制区域。这归因于流动从层流到湍流状态的转变。因此,重要的是设计优化MREA以保持高可控性。为了准确评估阻尼力,具有轻微损失因子(BPM)的宾厄姆塑料模型被用来制定问题。 MREA阀的磁静电分析已经进行了分析地进行并使用磁性有限元分析,以便在施加的电流中获得MR流体有源间隙区域中的诱导磁通量。然后,使用BPM,已经配制了设计优化问题,以最佳地设计双折线MREA,以最大化其动态范围在满足约束的同时以5M S(-1)的冲击速度最大化。遗传算法和顺序二次编程方法都用于捕获准确的全局最佳解决方案。最后,首先在不同的冲击速度,输入电流下首先评估优化的双折叠MREA的性能,然后与等同的单流动路径MREA的相比。

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