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有限元分析以确定单肢灵活性对结构强度以及残肢与假肢接受腔之间相互作用的影响。

Finite-element analysis to determine effect of monolimb flexibility on structural strength and interaction between residual limb and prosthetic socket.

作者信息

Lee Winson C C, Zhang Ming, Boone David A, Contoyannis Bill

机构信息

Jockey Club Rehabilitation Engineering Centre, The Hong Kong Polytechnic University, Hong Kong, China.

出版信息

J Rehabil Res Dev. 2004 Nov-Dec;41(6A):775-86. doi: 10.1682/jrrd.2004.01.0003.

Abstract

Monolimb refers to a kind of transtibial prostheses having the socket and shank molded into one piece of thermoplastic material. One of its characteristics is that the shank is made of a material that can deform during walking, which can simulate ankle joint motion to some extent. Changes in shank geometry can alter the stress distribution within the monolimb and at the residual limb-socket interface and, respectively, affect the deformability and structural integrity of the prosthesis and comfort perceived by amputees. This paper describes the development of a finite-element model for the study of the structural behavior of monolimbs with different shank designs and the interaction between the limb and socket during walking. The von Mises stress distributions in monolimbs with different shank designs at different walking phases are reported. With the use of distortion energy theory, possible failure was predicted. The effect of the stiffness of the monolimb shanks on the stress distribution at the limb-socket interface was studied. The results show a trend--the peak stress applied to the limb was lowered as the shank stiffness decreased. This information is useful for future monolimb optimization.

摘要

单腔假肢是指一种将接受腔和小腿部分模制成一体热塑性材料的经胫骨假肢。其特点之一是小腿部分由一种在行走过程中会变形的材料制成,这在一定程度上能够模拟踝关节的运动。小腿几何形状的变化会改变单腔假肢内部以及残肢与接受腔界面处的应力分布,进而分别影响假肢的可变形性和结构完整性以及截肢者所感受到的舒适度。本文描述了一个有限元模型的开发过程,用于研究不同小腿设计的单腔假肢的结构行为以及行走过程中肢体与接受腔之间的相互作用。报告了不同小腿设计的单腔假肢在不同行走阶段的冯·米塞斯应力分布情况。利用畸变能理论预测了可能出现的失效情况。研究了单腔假肢小腿刚度对肢体与接受腔界面处应力分布的影响。结果显示出一种趋势——随着小腿刚度的降低,施加在肢体上的峰值应力也会降低。这些信息对于未来单腔假肢的优化很有用。

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