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Performance Evaluation of Shear Mode and Flow Mode Magnetorheological (MR) Energy Absorbers for Adaptive Seat Suspension Systems

机译:用于自适应座椅悬架系统的剪切模式和流动模式磁流变学(MR)能吸收剂的性能评估

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A comparison study is conducted to evaluate the performance of shear and flow mode magnetorheological energy absorbers (MREAs) for a semi-active seat suspension system. The design methodologies for both flow mode and shear mode MREAs are presented. To validate the analytical results, both flow-mode and shear-mode MREAs are developed and their performance such as yield force and viscous damping as a function of the velocity, is experimentally evaluated. It is shown that the off-state force (viscous force) of the shear mode MREA is only a linear function of the damper velocity and, in comparison, the viscous force of typical flow mode damper increases sharply as the damper velocity increases. Using the validated design methodologies, flow-mode and shear-mode MREAs are designed for a crashworthy helicopter crew seat, and resulting metrics such as the size and weight of the flow- and shear-mode MREAs are developed as a function of damper performance requirements, i.e. maximum yield force, viscous damping and maximum stroke.
机译:进行了比较研究以评估半主动座椅悬架系统的剪切和流动模式磁流变学能吸收剂(MRES)的性能。介绍了流动模式和剪切模式MRES的设计方法。为了验证分析结果,经过实验评估流动模式和剪切模式MRES和它们的性能,例如屈服力和粘性阻尼的性能,是通过速度的函数。结果表明,剪切模式MREA的断开状态(粘性力)仅是阻尼速度的线性函数,并且相比,随着阻尼速度的增加,典型流动模式阻尼器的粘性力急剧增加。使用验证的设计方法,流动模式和剪切模式MRES设计用于Crashworthy直升机机组座椅,并产生了流量和剪切模式MRES的尺寸和重量的标准,作为阻尼性能要求的函数开发,即最大屈服力,粘性阻尼和最大行程。

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