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Biomechanical Analysis of Force Distribution in Human Finger Extensor Mechanisms

机译:人手指伸肌机理中力分布的生物力学分析

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摘要

The complexities of the function and structure of human fingers have long been recognised. The in vivo forces in the human finger tendon network during different activities are critical information for clinical diagnosis, surgical treatment, prosthetic finger design, and biomimetic hand development. In this study, we propose a novel method for in vivo force estimation for the finger tendon network by combining a three-dimensional motion analysis technique and a novel biomechanical tendon network model. The extensor mechanism of a human index finger is represented by an interconnected tendinous network moving around the phalanx's dorsum. A novel analytical approach based on the “Principle of Minimum Total Potential Energy” is used to calculate the forces and deformations throughout the tendon network of the extensor mechanism when subjected to an external load and with the finger posture defined by measurement data. The predicted deformations and forces in the tendon network are in broad agreement with the results obtained by previous experimental in vitro studies. The proposed methodology provides a promising tool for investigating the biomechanical function of complex interconnected tendon networks in vivo.
机译:人们早已认识到人手指的功能和结构的复杂性。在不同活动期间人手指腱网络中的体内力是临床诊断,手术治疗,假肢手指设计和仿生手发育的关键信息。在这项研究中,我们提出了一种新的方法,通过结合三维运动分析技术和新型的生物力学的肌腱网络模型,来估算手指腱网络的体内力。人类食指的伸肌机制由围绕趾骨背侧移动的相互连接的肌腱网络表示。一种基于“最小总势能原理”的新颖分析方法,用于在承受外部载荷且手指姿态由测量数据定义的情况下,计算整个伸肌机构肌腱网络的力和变形。肌腱网络中的预测变形和作用力与以前的体外实验研究结果基本一致。所提出的方法为研究体内复杂的相互连接的肌腱网络的生物力学功能提供了一个有前途的工具。

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