The purpose of this study was to assess the possible role of muscles in offsetting the anterior shear forces caused by the load and upper body mass and their accelerations that act on the L 4L 5, intervertebral joint during dynamic squat lifts. Fifteen males lifted five loads from 5.8 to 32.4 kg. Anterior shear forces estimated to be acting on the lumber spine, based on model output, ranged from 492 N at 5.8 kg to 736 N at 32.4 kg. However, the peak shear force that had to be supported by the facets and possibly the disc remained relatively constant at approximately 200 N, regardless of the load mass. The posteriorly directed fascicles of the lumbar portions of the iliocostalis lumborum and longissimus thoracis muscles increased their force output, as estimated from an EMG driven model, in proportion to the anterior load shear force demands, thereby sharing the load on the intervertebral joint. It appears that the combination of anatomical design and neural control of the musculature leads to a situation where the resultant shear force on the joint can be maintained at a relatively constant and safe level in the types of lifts studied. This 'safety' mechanism is useful only with the preservation of lordosis during lifting, when the muscles must provide the majority of the support moment.

译文

这项研究的目的是评估肌肉在抵消动态下蹲提升过程中作用于L 4L 5椎间关节的负荷和上半身质量及其加速度引起的前剪切力中的可能作用。十五只雄性从5.8举起五只重物到32.4千克。根据模型输出,估计作用在木材脊柱上的前剪切力范围为5.8千克时的492 N至32.4千克时的736 N。然而,无论负载质量如何,必须由小平面和可能的圆盘支撑的峰值剪切力保持在大约200 N处相对恒定。根据EMG驱动模型估算,The肋腰和胸肌的腰部部分的后向束与前载荷剪切力需求成比例地增加了其力输出,从而分担了椎间关节的载荷。看来,解剖设计和肌肉组织的神经控制的结合导致了这样一种情况,即在所研究的提升类型中,关节上的合力剪切力可以保持在相对恒定且安全的水平。这种 “安全” 机制仅在举起期间保留脊柱前凸时有用,此时肌肉必须提供大部分支撑时刻。

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