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Optimal design of a magnetorheological damper used in smart prosthetic knees

机译:智能假肢膝关节中使用的磁流变阻尼器的最佳设计

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摘要

In this paper, a magnetorheological (MR) damper is optimally designed for use in smart prosthetic knees. The objective of optimization is to minimize the total energy consumption during one gait cycle and weight of the MR damper. Firstly, a smart prosthetic knee employing a DC motor, MR damper and springs is developed based on the kinetics characteristics of human knee during walking. Then the function of the MR damper is analyzed. In the initial stance phase and swing phase, the MR damper is powered off (off-state). While during the late stance phase, the MR damper is powered on to work as a clutch (on-state). Based on the MR damper model as well as the prosthetic knee model, the instantaneous energy consumption of the MR damper is derived in the two working states. Then by integrating in one gait cycle, the total energy consumption is obtained. Particle swarm optimization. algorithm is used to optimize the geometric dimensions of MR damper. Finally, a prototype of the optimized MR damper is fabricated and tested with comparison to simulation.
机译:在本文中,磁流变学(MR)阻尼器是最佳的设计用于智能假肢膝盖。优化的目的是最小化一个步态周期和MR阻尼器的重量期间的总能耗。首先,基于行走期间人膝部的动力学特征,开发了一种采用直流电动机,MR Damper和Springs的智能假肢膝关节。然后分析了MR DAMPER的功能。在初始姿态相和摆动阶段,MR阻尼器断电(偏离状态)。虽然在晚期阶段期间,MR DAMPER通电以作为离合器(在状态)工作。基于MR阻尼模型以及假肢模型,MR阻尼器的瞬时能量消耗衍生在两个工作状态中。然后通过在一个步态周期中积分,获得总能耗。粒子群优化。算法用于优化MR Damper的几何尺寸。最后,与模拟相比,制造和测试了优化MR阻尼器的原型。

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