KU Leuven, Department of Kinesiology, Human Movement Biomechanics, Tervuursevest 101, B-3001 Heverlee, Belgium.
KU Leuven, Department of Mechanical Engineering, Division PMA, Celestijnenlaan 300B, B-3001 Heverlee, Belgium.
J Biomech. 2014 Jan 22;47(2):596-601. doi: 10.1016/j.jbiomech.2013.11.002. Epub 2013 Nov 23.
This study examined the effect of body segment parameter (BSP) perturbations on joint moments calculated using an inverse dynamics procedure and muscle forces calculated using computed muscle control (CMC) during gait. BSP (i.e. segment mass, center of mass location (com) and inertia tensor) of the left thigh, shank and foot of a scaled musculoskeletal model were perturbed. These perturbations started from their nominal value and were adjusted to ±40% in steps of 10%, for both individual as well as combined perturbations in BSP. For all perturbations, an inverse dynamics procedure calculated the ankle, knee and hip moments based on an identical inverse kinematics solution. Furthermore, the effect of applying a residual reduction algorithm (RRA) was investigated. Muscle excitations and resulting muscle forces were calculated using CMC. The results show only a limited effect of an individual parameter perturbation on the calculated moments, where the largest effect is found when perturbing the shank com (MS(com,shank), the ratio of absolute difference in torque and relative parameter perturbation, is maximally -7.81 N m for hip flexion moment). The additional influence of perturbing two parameters simultaneously is small (MS(mass+com,thigh) is maximally 15.2 N m for hip flexion moment). RRA made small changes to the model to increase the dynamic consistency of the simulation (after RRA MS(com,shank) is maximally 5.01 N m). CMC results show large differences in muscle forces when BSP are perturbed. These result from the underlying forward integration of the dynamic equations.
本研究考察了在步态中,通过逆动力学过程计算关节力矩和通过计算肌肉控制(CMC)计算肌肉力时,身体节段参数(BSP)扰动对关节力矩的影响。对比例化骨骼肌肉模型的左大腿、小腿和脚的 BSP(即节段质量、质心位置(COM)和惯性张量)进行了扰动。这些扰动从其名义值开始,并以 10%的步长调整为±40%,包括单独和组合 BSP 的扰动。对于所有的扰动,逆动力学过程基于相同的逆运动学解计算了踝关节、膝关节和髋关节的力矩。此外,还研究了应用残余减少算法(RRA)的效果。使用 CMC 计算肌肉激发和产生的肌肉力。结果表明,单个参数扰动对计算出的力矩的影响有限,当扰动小腿 COM(MS(com,shank),即力矩和相对参数扰动的绝对值差异的比值,在髋关节屈曲力矩中最大为-7.81 N m)时,影响最大。同时扰动两个参数的额外影响较小(在髋关节屈曲力矩中,MS(mass+com,thigh)最大为 15.2 N m)。RRA 对模型进行了微小的修改,以增加模拟的动态一致性(在 RRA 之后,MS(com,shank)最大为 5.01 N m)。当 BSP 受到扰动时,CMC 结果显示肌肉力有很大差异。这是由于底层的动态方程正向积分。