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Design of bypass rotary vane magnetorheological damper for prosthetic knee application

机译:假体膝关型应用旁通旋转叶片磁流变器设计

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Semi-active systems using magnetorheological fluids have been realized in many novel devices such as linear dampers, rotary dampers, brakes, and so on. Rotary vane-type magnetorheological damper is one such device that uses magnetorheological fluid as a hydraulic medium and a controllable magnetorheological valve to generate variable resistance. This device, due to its limited angle motion, lends itself to a natural application for prosthetic knee joint. In this article, a bypass rotary vane-type magnetorheological damper suitable for prosthetic knee device is designed. In the proposed design, the rotary vane chamber and the bypass magnetorheological valve are connected using hydraulic cables and ports. The design of rotary cylinder is implemented based on the largest possible dimensions within the envelope of a healthy human knee, while the magnetorheological valve is designed optimally using a multi-objective genetic algorithm optimization. Off-state braking torque, induced on-state braking torque and mass of the valve are selected as three objectives. The torque and angular velocity requirements of the normal human knee are used as design limits. The optimal solution is chosen from the obtained Pareto fronts by prioritizing the objective of weight reduction of magnetorheological valve. The optimal solution is capable of producing a damping torque of 73 Nm at a design speed of 8.4 rpm and current supply of 1.9 A. Potential benefits offered by this design when compared with multi-plate magnetorheological brake are flow mode operation, large clearance gap, and fewer design components, thus reducing the manufacturing complexity.
机译:使用磁流变流体的半极管系统已经在许多新颖的装置中实现了线性阻尼器,旋转阻尼器,制动器等。旋转叶片型磁流变阻尼器是一种这样的装置,其使用磁流变流体作为液压介质和可控的磁流变阀以产生可变阻力。由于其角度运动有限,该装置为假肢膝关节的自然应用。在本文中,设计了适用于假体膝盖装置的旁路旋转叶片式磁流变阻尼器。在所提出的设计中,使用液压电缆和端口连接旋转叶片室和旁路磁流变阀。旋转缸的设计基于健康人膝盖内的最大尺寸来实现,而磁流变阀使用多目标遗传算法优化最佳设计。关闭状态制动扭矩,诱导导通状态制动扭矩和阀门的质量作为三个目的。正常人体膝关节的扭矩和角速度要求用作设计限制。通过优先考虑磁流变阀的重量减轻的目的,从获得的帕累托前线选择最佳溶液。最佳解决方案能够以8.4rpm的设计速度和电流供应为1.9 A的设计速度产生73nm的阻尼扭矩。与多板磁流线学制动器相比,这种设计提供的潜在益处是流动模式操作,较大的间隙,更少的设计组件,从而降低了制造复杂性。

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