Gonzalez R V, Hutchins E L, Barr R E, Abraham L D
Department of Mechanical Engineering, The University of Texas, Austin 78712, USA.
J Biomech Eng. 1996 Feb;118(1):32-40. doi: 10.1115/1.2795943.
This paper describes the development and evaluation of a musculoskeletal model that represents human elbow flexion-extension and forearm pronation-supination. The length, velocity, and moment arm for each of the eight musculotendon actuators were based on skeletal anatomy and joint position. Musculotendon parameters were determined for each actuator and verified by comparing analytical moment-angle curves with experimental joint torque data. The parameters and skeletal geometry were also utilized in the musculoskeletal model for the analysis of ballistic (rapid-directed) elbow joint complex movements. The key objective was to develop a computational model, guided by parameterized optimal control, to investigate the relationship among patterns of muscle excitation, individual muscle forces, and to determine the effects of forearm and elbow position on the recruitment of individual muscles during a variety of ballistic movements. The model was partially verified using experimental kinematic, torque, and electromyographic data from volunteer subjects performing both isometric and ballistic elbow joint complex movements. This verification lends credibility to the time-varying muscle force predictions and the recruitment of muscles that contribute to both elbow flexion-extension and forearm pronation-supination.
本文描述了一个代表人类肘部屈伸和前臂旋前-旋后的肌肉骨骼模型的开发与评估。八个肌肉肌腱驱动装置中每个装置的长度、速度和力臂均基于骨骼解剖结构和关节位置。为每个驱动装置确定了肌肉肌腱参数,并通过将分析力矩-角度曲线与实验关节扭矩数据进行比较来进行验证。肌肉骨骼模型还利用这些参数和骨骼几何结构来分析弹道式(快速定向)肘关节复合运动。关键目标是开发一个由参数化最优控制引导的计算模型,以研究肌肉兴奋模式、个体肌肉力量之间的关系,并确定在各种弹道运动中前臂和肘部位置对个体肌肉募集的影响。该模型使用来自志愿者受试者进行等长和弹道式肘关节复合运动的实验运动学、扭矩和肌电图数据进行了部分验证。这种验证为随时间变化的肌肉力量预测以及对肘部屈伸和前臂旋前-旋后都有贡献的肌肉募集提供了可信度。