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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part H: Journal of Engineering in Medicine >How does the central nervous system address the kinetic redundancy in the lumbar spine? Three-dimensional isometric exertions with 18 Hill-model-based muscle fascicles at the L4–L5 level
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How does the central nervous system address the kinetic redundancy in the lumbar spine? Three-dimensional isometric exertions with 18 Hill-model-based muscle fascicles at the L4–L5 level

机译:中枢神经系统如何处理腰椎的动力学冗余?三维等距运动,在L4–L5级别具有18个基于Hill模型的肌肉束

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摘要

The human motor system is organized for execution of various motor tasks in a different and flexible manner. The kinetic redundancy in the human musculoskeletal system is a significant property by which the central nervous system achieves many complementary goals. An equilibrium-based biomechanical model of isometric three-dimensional exertions of trunk muscles has been developed. Following the definition and role of the uncontrolled manifold, the kinetic redundancy concept is explored in mathematical terms. The null space of the kinetically redundant system when a certain joint moment and/or stiffness are needed is derived and discussed. The aforementioned concepts have been illustrated, using a three-dimensional three-degrees-of-freedom biomechanical model of the spine with 18 anatomically oriented Hill-type-model muscle fascicles. The considerations of stability and its consequence on the internal loading of the spine and coactivation consequences are discussed in both general and specific cases. The results can shed light on the interaction mechanisms in muscle activation patterns seen in various tasks and exertions and can provide a significant understanding for future research studies and clinical practices related to low-back disorders. Alteration of recruitment patterns in low-back-pain patients has been explained on the basis of this biomechanical analysis. The higher coactivation results in higher internal loading while providing higher joint stiffness that enhances spinal stability, which guards against spinal deformation in the presence of any perturbations.
机译:人体马达系统被组织为以不同且灵活的方式执行各种马达任务。人肌肉骨骼系统中的动力学冗余是中枢神经系统实现许多互补目标的重要属性。已经建立了基于平衡的躯干肌肉等距三维运动的生物力学模型。遵循非受控歧管的定义和作用,以数学术语探讨了动力学冗余的概念。推导并讨论了需要一定的关节力矩和/或刚度时,动力学冗余系统的零空间。已经使用具有18个解剖学定向的Hill型模型肌肉束的脊柱的三维三自由度生物力学模型对上述概念进行了说明。在一般情况和特定情况下,都讨论了稳定性及其对脊柱内部载荷和共激活结果的影响。该结果可以阐明在各种任务和运动中看到的肌肉激活模式中的相互作用机制,并且可以为与腰背疾病有关的未来研究和临床实践提供重要的理解。在这种生物力学分析的基础上,已经解释了下腰痛患者募集方式的改变。较高的共活化度导致较高的内部负荷,同时提供较高的关节刚度,从而增强脊柱稳定性,从而防止在出现任何扰动时脊柱变形。

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