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Adaptive Knee Joint Exoskeleton Based on Biological Geometries

机译:基于生物几何学的自适应膝关节外骨骼

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摘要

This paper presents a relatively complete analytical model of a knee joint interacting with a two-link exoskeleton for investigating the effects of different exoskeleton designs on the internal joint forces/torque in the knee. The closed kinematic chain formed by the leg and exoskeleton has a significant effect on the joint forces/torque in the knee. A bio-joint model is used to capture this effect by relaxing a commonly made assumption that approximates a knee joint as a perfect engineering pin-joint in designing an exoskeleton. Based on the knowledge of a knee-joint kinematics, an adaptive knee-joint exoskeleton has been designed to eliminate negative effects associated with the closed leg-exoskeleton kinematic chain on a human knee. For experimental validation, the flexion motion of an artificial human knee is investigated comparing the performances of five exoskeleton designs against the case with no exoskeleton. Analytical results that estimate internal forces/torque using the kinematic and dynamic models (based on the properties of a knee joint) agree well with data obtained experimentally. This investigation illustrates the applications of the analytical model for designing an adaptive exoskeleton that minimizes internal joint forces due to a knee-exoskeleton interaction.
机译:本文提出了一个相对完整的膝关节与双链外骨骼相互作用的分析模型,以研究不同外骨骼设计对膝关节内部关节力/扭矩的影响。腿部和外骨骼形成的闭合运动链对膝盖的关节力/扭矩有重大影响。使用生物关节模型可以通过放宽通常的假设来捕获此效果,这种假设在设计外骨骼时将膝关节近似为理想的工程销钉关节。基于对膝关节运动学的了解,已设计了一种自适应膝关节外骨骼,以消除与闭合的腿外骨骼运动链对人的膝盖相关的负面影响。为了进行实验验证,比较了五种外骨骼设计与无外骨骼情况下的性能,研究了人造人膝的屈曲运动。使用运动学和动力学模型(基于膝关节的特性)估算内力/扭矩的分析结果与实验获得的数据非常吻合。这项研究说明了分析模型在设计自适应外骨骼中的应用,该外骨骼可最大程度地减少由于膝外骨骼相互作用而引起的内部关节力。

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