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VALIDATION OF A COMPUTATIONAL MUSCULOSKELETAL MODEL OF THE ELBOW

机译:肘部计算肌肉骨骼模型的验证

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Musculoskeletal computational modeling can be a powerful and useful tool to study joint behavior, examine muscle and ligament function, measure joint contact pressures, simulate injury, and analyze the biomechanical results of reconstructive procedures. Commonly, biomechanical models are based on either finite element analysis (FEA) or three-dimensional rigid body dynamics. While each approach has advantages for specific applications, rigid body dynamics algorithms are highly efficient [1], thus significantly reducing solution time. Many musculoskeletal models of the elbow have been developed [2, 3], but all have constrained the articulations to have particular degrees of freedom and ignored the effects of ligaments. An accurate and robust model without these limitations has potential as a clinical tool to predict the outcome of injuries and/or surgical procedures. This work develops and validates an accurate computational model of the elbow joint whereby joint kinematics are dictated by three-dimensional bony geometry contact, ligamentous constraints, and muscle loading.
机译:肌肉骨骼计算建模可以是一个强大而有用的工具来研究联合行为,检查肌肉和韧带功能,测量关节接触压力,模拟损伤,分析重建程序的生物力学结果。通常,生物力学模型基于有限元分析(FEA)或三维刚体动态。虽然每种方法具有特定应用的优势,但刚体动态算法高效[1],从而显着降低了解决时间。肘部的许多肌肉骨骼模型已经开发出来[2,3],但所有人都限制了特定程度的自由度并忽略了韧带的影响。没有这些限制的准确且鲁棒的模型具有预测伤害和/或外科手术的结果的临床工具。这项工作开发并验证了肘关节的准确计算模型,由此由三维骨骼几何接触,韧带约束和肌肉载荷决定了关节运动学。

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