基于气动与液压混合动力的半主动踝关节足假体刚度与能量定时控制设计。

Sy Nguyen, Sepehr Ramezani, Hwan Choi
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引用次数: 0

摘要

下肢截肢者需要踝关节-足假体具有可调节的刚度和能量返回时间,以适应不同的行走速度,以及足够的踝关节推离力来推动身体向前。大多数被动式假肢利用碳纤维叶片(cfb)进行能量存储和返回,但其单一的刚度和过早的能量返回时间限制了其推进效率。带循环流化床的准主动或动力假体也不能充分利用循环流化床的能量储存和返回能力。因此,许多准主动假肢缺乏精确的能量返回时间,而动力假肢依赖于大型马达或笨重的液压缸。在本文中,我们提出了气动和液压混合假体(PHHP),旨在调整刚度和能量返回时间。该系统利用气动和液压系统的可压缩和不可压缩特性,实现刚度调整和存储能量的定时传递。PHHP包括三个不同尺寸的气动腔,通过打开和关闭阀门来调节液压缸的阻力,从而实现可变刚度。液压缸从碳纤维脚的变形中储存能量,并通过液压阀释放能量以辅助推动。理论和实验结果表明,PHHP具有推动辅助和可变刚度(24.3-54 N/mm)的潜力,可以适应下肢截肢者不同的行走速度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design of a Semi-Active Ankle Foot Prosthesis Using a Pneumatic and Hydraulic Hybrid for Stiffness and Energy Timing Control.

Lower-limb amputees require ankle-foot prostheses with adjustable stiffness and energy return timing to adapt to varying walking speeds, as well as adequate ankle push-off power to propel the body forward. Most passive prostheses utilize energy storage and return with carbon fiber blades (CFBs), but their single stiffness and early energy return timing limit their effectiveness for propulsion. Quasi-active or powered prostheses with CFBs also fail to fully utilize the energy storage and return capabilities of the CFB. As a result, many quasiactive prostheses lack precise energy return timing, while powered prostheses rely on large motors or bulky hydraulic cylinders. In this paper, we present the Pneumatic and Hydraulic Hybrid Prosthesis (PHHP), designed to adjust stiffness and energy return timing. The system leverages the compressible and incompressible properties of pneumatic and hydraulic systems to enable both stiffness adjustment and stored energy delivery timing. The PHHP includes three pneumatic chambers of varying sizes that adjust the resistance of a hydraulic cylinder by turning valves on and off, enabling variable stiffness. The hydraulic cylinder stores energy from the carbon fiber foot's deformation and releases it for push-off assistance via a hydraulic valve. Theoretical and experimental results show the PHHP's potential for push-off assistance and variable stiffness (24.3-54 N/mm), making it adaptable to different walking speeds for lower-limb amputees.

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