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首页> 外文期刊>Annals of Biomedical Engineering: The Journal of the Biomedical Engineering Society >Creep deformation of the human trunk in response to prolonged and repetitive flexion: measuring and modeling the effect of external moment and flexion rate.
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Creep deformation of the human trunk in response to prolonged and repetitive flexion: measuring and modeling the effect of external moment and flexion rate.

机译:人体躯干对长时间重复性屈曲的蠕变变形:测量和模拟外部力矩和屈曲率的影响。

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摘要

While viscoelastic responses of isolated trunk soft tissues have been characterized in earlier studies, the effects of external loading and flexion rate on these responses in the intact human trunk are largely unknown. Two experiments were conducted to measure trunk viscoelastic behaviors, one involving prolonged flexion with several extra loads (attached to the wrists) and the other repetitive trunk flexion with different extra loads and flexion rates. Direct outcome measures included initial trunk angle, creep angle, and residual/cumulative creep. Viscoelastic behaviors in both experiments were characterized using different Kelvin-solid models. For prolonged flexion, extra load significantly affected initial angle, creep angle, and viscoelastic model parameters, while residual creep remained unchanged. For repetitive flexion, cumulative creep angle significantly increased with both extra load and flexion rate. Nonlinear viscoelastic behavior of the trunk was evident in both experiments, which also indicated better predictive performance using Kelvin-solid models with ≥2 retardation time constants. Understanding trunk viscoelastic behaviors in response to flexion exposures can help in future modeling and in assessing how such exposures alter the synergy between active and passive trunk tissues.
机译:尽管在较早的研究中已经对孤立的躯干软组织的粘弹性反应进行了描述,但是在完整的人体躯干中,外部负荷和屈曲率对这些反应的影响尚不清楚。进行了两项实验来测量躯干粘弹性行为,其中一项涉及长时间屈曲,并带有多个额外负荷(附着在手腕上),另一个涉及重复性躯干屈曲,具有不同的额外负荷和屈曲率。直接结果测量包括初始躯干角,蠕变角和残余/累积蠕变。使用不同的开尔文-固体模型表征了两个实验中的粘弹性行为。对于长时间的屈曲,额外的负荷会显着影响初始角度,蠕变角度和粘弹性模型参数,而残余蠕变保持不变。对于重复屈曲,累积蠕变角会随着额外载荷和屈曲率而显着增加。在两个实验中,躯干的非线性粘弹性行为均很明显,这也表明使用Kelvin-solid模型(延迟时间常数≥2)具有更好的预测性能。了解躯干粘弹性行为以响应屈曲暴露可以帮助将来的建模和评估此类暴露如何改变主动和被动躯干组织之间的协同作用。

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