Bazrgari B, Shirazi-Adl A, Parnianpour M
Department of Mechanical Engineering, Ecole Polytechnique, P.O. Box 6079, Station "Centre-ville", Montreal, Quebec H3C3A7, Canada.
Clin Biomech (Bristol). 2009 May;24(4):341-7. doi: 10.1016/j.clinbiomech.2009.02.002. Epub 2009 Mar 12.
Sudden trunk perturbations occur in various occupational and sport activities. Despite numerous measurement studies, no comprehensive modeling simulations have yet been attempted to investigate trunk biodynamics under sudden loading/unloading.
Dynamic kinematics-driven approach was used to evaluate the temporal variation of trunk muscle forces, internal loads and stability before and after a sudden release of a posterior horizontal load. Measured post-disturbance trunk kinematics, as input, and muscle electromyography (EMG) activities, for qualitative validation, were considered.
Computed agonist and antagonist muscle forces before and after release agreed well with reported EMG activities and demonstrated basic response characteristics such as activation latency and reflex activation. The trunk was found quite stable before release and in early post-release period. Larger applied load substantially increased trunk kinematics, muscle forces and spinal loads.
Excessive spinal loads due to large muscle forces in sudden loading conditions is a risk factor as the central nervous system attempts to reflexively control the sudden disturbances, a situation that further deteriorates under larger perturbations and longer latency periods. Predictions indicate the potential of the kinematics-driven model in ergonomics as well as training and rehabilitation programs.
突然的躯干扰动发生在各种职业和体育活动中。尽管有大量的测量研究,但尚未尝试进行全面的建模模拟来研究突然加载/卸载下的躯干生物动力学。
采用动态运动学驱动方法来评估在突然释放后水平负荷之前和之后躯干肌肉力量、内部负荷和稳定性的时间变化。将测量得到的扰动后躯干运动学作为输入,并考虑肌肉肌电图(EMG)活动以进行定性验证。
释放前后计算得到的主动肌和拮抗肌力量与报道的EMG活动吻合良好,并显示出基本的反应特征,如激活潜伏期和反射激活。发现躯干在释放前和释放后的早期相当稳定。施加的负荷越大,躯干运动学、肌肉力量和脊柱负荷就越大。
在突然加载情况下,由于强大的肌肉力量导致的脊柱负荷过大是一个风险因素,因为中枢神经系统试图反射性地控制突然的扰动,在更大的扰动和更长的潜伏期情况下,这种情况会进一步恶化。预测表明运动学驱动模型在人体工程学以及训练和康复计划中的潜力。