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On the Modeling of Passive Motion of the Human Knee Joint by Means of Equivalent Planar and Spatial Parallel Mechanisms

机译:用等效平面和空间并联机构模拟人膝关节的被动运动

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Recent literature in biomechanics has demonstrated that motion of the human knee joint in virtually unloaded conditions is guided in a single and complex path by the passive structures of the joint alone. It has been deduced that the joint behaves as a single degree of freedom mechanism. Early models, dated on beginning of this century, showed this in the sagittal plane only. The three dimensional motion has been recently modelled by means of equivalent parallel mechanisms, based also on experimental observations on knee specimens of two separate frictionless contacts and three isometric ligament fibres. The model of the joint is a key tool for a deeper understanding of the knee motion and the design of reliable and efficient prostheses. It also provides useful information for the planning of surgical intervention on the basic structures of the knee. The progress of this modelling is reported in this paper. A medical and biomechanical rationale for these studies is provided, together with a number of relevant publications. The pioneering planar four-bar linkage has been initially advanced to a single degree of freedom equivalent spatial mechanism characterised by plane-to-sphere contacts. The closure equations for this mechanism have been progressively simplified. Extensions to more complex articular surfaces have been also performed. The results reported for all these models demonstrate that the original model assumptions were valid and that refinements in articular surface descriptions are justified to a certain extent.
机译:生物力学方面的最新文献表明,在几乎未加载的条件下,人膝关节的运动仅通过关节的被动结构以单一且复杂的路径进行引导。已经推断出,关节表现为单一的自由度机制。始于本世纪初的早期模型仅在矢状平面上显示了这一点。最近,还基于等效的平行机制对三维运动进行了建模,这也是基于在两个独立的无摩擦接触和三个等距韧带纤维的膝盖样本上的实验观察结果。关节模型是深入了解膝盖运动以及设计可靠而高效的假体的关键工具。它还为计划膝关节基本结构的手术干预提供了有用的信息。本文报道了建模的进展。提供了这些研究的医学和生物力学原理,以及许多相关出版物。开拓性的平面四连杆机构最初已发展到以平面与球面接触为特征的单自由度等效的空间机制。该机制的闭合方程已逐渐简化。还已经扩展到更复杂的关节表面。报告的所有这些模型的结果表明,原始模型的假设是正确的,并且关节表面描述的改进在一定程度上是合理的。

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