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首页> 外文期刊>Structural and multidisciplinary optimization >Prediction of crank torque and pedal angle profiles during pedaling movements by biomechanical optimization
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Prediction of crank torque and pedal angle profiles during pedaling movements by biomechanical optimization

机译:通过生物力学优化预测踏板运动过程中的曲柄扭矩和踏板角度曲线

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摘要

This paper introduces the inverse-inverse dynamics method for prediction of human movement and applies it to prediction of cycling motions. Inverse-inverse dynamics optimizes a performance criterion by variation of a parameterized movement. First, a musculoskeletal model of cycling is built in the AnyBody Modeling System (AMS). The movement is then parameterized by means of time functions controlling selected degrees-of-freedom (DOF) of the model. Subsequently, the parameters of these functions are optimized to produce an optimum posture or movement according to a user-defined cost function and constraints. The cost function and the constraints typically express performance, comfort, injury risk, fatigue, muscle load, joint forces and other physiological properties derived from the detailed musculoskeletal analysis. A physiology-based cost function that expresses the integral effort over a cycle to predict the motion pattern and crank torque was used. An experiment was conducted on a group of eight highly trained male cyclists to compare experimental observations to the simulation results. The proposed performance criterion predicts realistic crank torque profiles and ankle movement patterns.
机译:本文介绍了一种用于人体运动预测的逆动力学方法,并将其应用于自行车运动的预测。逆逆动力学通过参数化运动的变化来优化性能标准。首先,在AnyBody建模系统(AMS)中建立了自行车的肌肉骨骼模型。然后通过控制模型的选定自由度(DOF)的时间函数对运动进行参数化。随后,根据用户定义的成本函数和约束条件,优化这些函数的参数以产生最佳姿势或运动。成本函数和约束条件通常表示性能,舒适性,受伤风险,疲劳,肌肉负荷,关节力量以及从详细的骨骼肌肉分析得出的其他生理特性。使用了基于生理的成本函数,该函数表示一个周期内的整体作用力,以预测运动模式和曲柄转矩。在一组八名训练有素的男性自行车手上进行了一项实验,以比较实验观察结果与模拟结果。提出的性能标准可预测实际的曲柄扭矩曲线和脚踝运动模式。

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