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A novel approach to evaluate abdominal coactivities for optimal spinal stability and compression force in lifting

机译:一种评估腹部共活动性的最佳方法,以达到最佳的脊柱稳定性和举升时的压缩力

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摘要

A novel optimisation algorithm is developed to predict coactivity of abdominal muscles while accounting for both trunk stability via the lowest buckling load (p_(CT)) and tissue loading via the axial compression (F_c). A nonlinear multi-joint kinematics-driven model of the spine along with the response surface methodology are used to establish empirical expressions for P_(cr) and F_c as functions of abdominal muscle coactivities and external load magnitude during lifting in upright standing posture. A two-component objective function involving F_c and P_(cr) is defined. Due to opposite demands, abdominal coactivities that simultaneously maximise P_(cr) and minimise F_c cannot exist. Optimal solutions are thus identified while striking a compromise between requirements on trunk stability and risk of injury. The oblique muscles are found most efficient as compared with the rectus abdominus. Results indicate that higher abdominal coactivities should be avoided during heavier lifting tasks as they reduce stability margin while increasing spinal loads.
机译:开发了一种新颖的优化算法来预测腹肌的活动性,同时通过最低的屈曲载荷(p_(CT))和躯干通过轴向压缩力(F_c)兼顾躯干稳定性。脊柱的非线性多关节运动学驱动模型与响应面方法一起用于建立P_(cr)和F_c的经验表达式,这些表达式是在仰卧直立姿势抬起时腹部肌肉活动性和外部负荷大小的函数。定义了涉及F_c和P_(cr)的两部分目标函数。由于相反的要求,不存在同时使P_(cr)最大化和F_c最小化的腹部活性。因此,在对行李箱稳定性要求和伤害风险之间做出折衷的同时,确定了最佳解决方案。与腹直肌相比,发现斜肌最有效。结果表明,在进行较重的举重任务时应避免较高的腹部活动能力,因为它们会降低稳定性余量,同时增加脊柱负荷。

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  • 作者单位

    Division of Applied Mechanics, Department of Mechanical Engineering, Ecole Polytechnique, P.O. Box 6079, Station 'Centre -Ville', Montreal, Quebec, H3C 3A7 Canada;

    Division of Applied Mechanics, Department of Mechanical Engineering, Ecole Polytechnique, P.O. Box 6079, Station 'Centre -Ville', Montreal, Quebec, H3C 3A7 Canada;

    Division of Applied Mechanics, Department of Mechanical Engineering, Ecole Polytechnique, P.O. Box 6079, Station 'Centre -Ville', Montreal, Quebec, H3C 3A7 Canada;

    Department of Mechanical Engineering, Sharif University of Technology, Tehran, Iran;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    abdominal coactivity; optimisation; spine; stability; compression; finite elements;

    机译:腹部活动优化;脊柱;稳定性;压缩;有限元;

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