首页> 外文期刊>Journal of Biomechanics >Seated whole body vibrations with high-magnitude accelerations--relative roles of inertia and muscle forces.
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Seated whole body vibrations with high-magnitude accelerations--relative roles of inertia and muscle forces.

机译:坐着的全身振动具有高强度加速度-惯性和肌肉力的相对作用。

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Reliable computation of spinal loads and trunk stability under whole body vibrations with high acceleration contents requires accurate estimation of trunk muscle activities that are often overlooked in existing biodynamic models. A finite element model of the spine that accounts for nonlinear load- and direction-dependent properties of lumbar segments, complex geometry and musculature of the spine, and dynamic characteristics of the trunk was used in our iterative kinematics-driven approach to predict trunk biodynamics in measured vehicle's seat vibrations with shock contents of about 4 g (g: gravity acceleration of 9.8m/s2) at frequencies of about 4 and 20 Hz. Muscle forces, spinal loads and trunk stability were evaluated for two lumbar postures (erect and flexed) with and without coactivity in abdominal muscles. Estimated peak spinal loads were substantially larger under 4 Hz excitation frequency as compared to 20 Hz with the contribution of muscle forces exceeding that of inertial forces. Flatteningof the lumbar lordosis from an erect to a flexed posture and antagonistic coactivity in abdominal muscles, both noticeably increased forces on the spine while substantially improving trunk stability. Our predictions clearly demonstrated the significant role of muscles in trunk biodynamics and associated risk of back injuries. High-magnitude accelerations in seat vibration, especially at near-resonant frequency, expose the vertebral column to large forces and high risk of injury by significantly increasing muscle activities in response to equilibrium and stability demands.
机译:在具有高加速度内容的全身振动下,要可靠地计算脊柱负荷和躯干稳定性,就需要准确估算躯干肌肉活动,而这在现有的生物动力学模型中常常被忽略。在我们的迭代运动学驱动方法中,使用了脊柱的有限元模型,该模型考虑了腰椎节段的非线性负荷和方向相关的特性,脊柱的复杂几何形状和肌肉组织以及躯干的动态特性,以预测躯干的生物动力学。在大约4 Hz和20 Hz的频率下,测得的车辆座椅振动的冲击含量约为4 g(g:重力加速度为9.8m / s2)。评估两种腰部姿势(直立和屈曲)的肌肉力量,脊柱负荷和躯干稳定性,腹部肌肉有无活动。在20 Hz的激励频率下,在4 Hz激励频率下估计的峰值脊柱负荷明显更大,而肌肉力的贡献超过了惯性力。腰椎前凸从直立变平为弯曲的姿势,以及腹部肌肉的拮抗作用,都显着增加了对脊柱的作用力,同时大大改善了躯干的稳定性。我们的预测清楚地表明了肌肉在躯干生物力学中的重要作用以及相关的背部受伤风险。座椅振动的高幅度加速,特别是在接近共振的频率下,通过响应平衡和稳定性要求而显着增加肌肉活动,从而使椎骨承受巨大的力和高受伤风险。

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