三维非对称举重脊柱负荷评估的混合预测模型

Rahid Zaman, J. Quarnstrom, Y. Xiang, Ritwik Rakshit, Jie Yang
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引用次数: 1

摘要

在这项研究中,一个混合预测模型用于预测三维不对称举重运动,并评估不对称举重任务中潜在的下背部肌肉骨骼损伤。混合模型有两个模块:一个骨骼模块和一个OpenSim肌肉骨骼模块。骨架模块由一个基于动态关节强度的40自由度空间骨架模型组成。该骨架模块可以利用逆动力学优化方法预测升降运动、地面反作用力(GRFs)和压力中心(COP)轨迹。运动方程由递推拉格朗日动力学建立。肌肉骨骼模块由324块肌肉驱动的全身腰椎模型组成。基于骨骼模块生成的运动学、GRFs和COP数据,肌肉骨骼模块使用静态优化和关节反作用力通过关节反作用力分析工具估计肌肉激活。对比了模拟肌电图和实验肌电图的肌肉激活结果,验证了模型的有效性。最后,对特定重量不对称举重任务的潜在下背部损伤进行评估。将脊柱的剪切和压缩载荷与NIOSH推荐的极限进行比较。在动态提升过程开始时,模拟脊柱压缩载荷超出NIOSH作用极限,但小于允许极限。这是由于NIOSH举升方程中考虑了疲劳因素。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hybrid Predictive Model for Assessing Spinal Loads for 3d Asymmetric Lifting
In this study, a hybrid predictive model is used to predict 3D asymmetric lifting motion and assess potential musculoskeletal lower back injuries for asymmetric lifting tasks. The hybrid model has two modules: a skeletal module and an OpenSim musculoskeletal module. The skeletal module consists of a dynamic joint strength based 40 degrees of freedom spatial skeletal model. The skeletal module can predict the lifting motion, ground reaction forces (GRFs), and center of pressure (COP) trajectory using an inverse dynamics based optimization method. The equations of motion are built by recursive Lagrangian dynamics. The musculoskeletal module consists of a 324-muscle-actuated full-body lumbar spine model. Based on the generated kinematics, GRFs and COP data from the skeletal module, the musculoskeletal module estimates muscle activations using static optimization and joint reaction forces through the joint reaction analysis tool. Muscle activation results between simulated and experimental EMG are compared to validate the model. Finally, potential lower back injuries are evaluated for a specific-weight asymmetric lifting task. The shear and compression spine loads are compared to NIOSH recommended limits. At the beginning of the dynamic lifting process, the simulated compressive spine load beyond the NIOSH action limit but less than the permissible limit. This is due to the fatigue factors considered in NIOSH lifting equation.
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