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DESIGN OPTIMIZATION OF A BI-FOLD MAGNETORHEOLOGICAL DAMPER SUBJECT TO IMPACT LOADS

机译:受冲击载荷的双折式磁流变阻尼器的设计优化

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Dynamic range (ratio of the maximum on-state damping force to the off-state damping force), is an important index characteristic of the performance of the Magnetorheological Energy Absorbers (MREAs). In high speed impact, the dynamic range may fall into the uncontrollable zone (≤ 1) due to the increase in the off-state damping force which is associated with the transition of the flow from laminar to turbulent condition. Therefore, it is of paramount importance to design optimize the MREA in order to increase its dynamic range while accommodating the geometry, MR fluid flow and magnetic field constraints. In this study, a design optimization problem has been formulated to optimally design a bi-fold MREA to comply with the helicopter crashworthiness specifications for lightweight civilian helicopters. It is required to have a minimum dynamic range of 2 at 5 m/s impact velocity while satisfying the constraints imposed due to the geometry, volume of the device, magnetic field and the flow of the magnetorheological fluid in the MR valve. Meanwhile in order to comply with the helicopter crashworthiness requirement, the MREA device should be designed to generate 15 kN field-off damping force at the design impact velocity if the MREA is to be integrated with skid landing gear systems. The magneto-static analysis of the MREA valve has been conducted analytically using simplified assumptions in order to obtain the relation between induced magnetic flux in the MR fluid gaps in active regions versus the applied current and MREA valve geometrical parameters. Both Bingham plastic models, with and without minor loss factors, have been utilized to derive the dynamic range and the results are compared in terms of the generated off-state damping force, on-state damping force, and dynamic range. The Bingham plastic model with minor loss coefficients was found to be more accurate due to the turbulent condition in the MREA caused by the impact. Finally, the performance of the optimized bi-fold MREA has been evaluated under different impact speeds.
机译:动态范围(最大开启状态阻尼力与关闭状态阻尼力之比)是磁流变能量吸收器(MREA)性能的重要指标特征。在高速冲击中,由于关闭状态阻尼力的增加,动态范围可能会落入不可控制的区域(≤1),这与流从层流状态过渡到湍流状态有关。因此,设计最优化MREA以增加其动态范围同时适应几何形状,MR流体流动和磁场约束至关重要。在这项研究中,制定了一个设计优化问题,以最佳地设计双向MREA,以符合轻型民用直升机的直升机耐撞性规范。要求在5 m / s的冲击速度下具有2的最小动态范围,同时满足由于MR阀的几何形状,设备体积,磁场和磁流变流体的流动而施加的约束。同时,为了符合直升机的耐撞性要求,如果MREA与滑行起落架系统集成在一起,则MREA设备应设计成在设计冲击速度下产生15 kN的场外阻尼力。为了获得活动区域内MR流体间隙中感应磁通量与施加电流和MREA阀几何参数之间的关系,已使用简化的假设对MREA阀进行了静磁分析。两种Bingham塑性模型(具有和没有较小的损耗因子)都已用于得出动态范围,并根据生成的关闭状态阻尼力,打开状态阻尼力和动态范围对结果进行了比较。由于冲击在MREA中产生了湍流条件,因此发现损失系数较小的Bingham塑性模型更为精确。最后,在不同的撞击速度下评估了优化的双重MREA的性能。

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