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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part H. Journal of Engineering in Medicine >Prediction of in vivo lower cervical spinal loading using musculoskeletal multi-body dynamics model during the head flexion/extension, lateral bending and axial rotation
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Prediction of in vivo lower cervical spinal loading using musculoskeletal multi-body dynamics model during the head flexion/extension, lateral bending and axial rotation

机译:使用肌肉骨骼多体动力学模型在头部屈曲/延伸期间使用肌肉骨骼多体动力学模型预测,横向弯曲和轴向旋转

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摘要

Cervical spine diseases lead to a heavy economic burden to the individuals and societies. Moreover, frequent post-operative complications mean a higher risk of neck pain and revision. At present, controversy still exists for the etiology of spinal diseases and their associated complications. Knowledge of in vivo cervical spinal loading pattern is proposed to be the key to answer these questions. However, direct acquisition of in vivo cervical spinal loading remains challenging. In this study, a previously developed cervical spine musculoskeletal multi-body dynamics model was utilized for spinal loading prediction. The in vivo dynamic segmental contributions to head motion and the out-of-plane coupled motion were both taken into account. First, model validation and sensitivity analysis of different segmental contributions to head motion were performed. For model validation, the predicted intervertebral disk compressive forces were converted into the intradiskal pressures and compared with the published experimental measurements. Significant correlations were found between the predicted values and the experimental results. Thus, the reliability and capability of the cervical spine model was ensured. Meanwhile, the sensitivity analysis indicated that cervical spinal loading is sensitive to different segmental contributions to head motion. Second, the compressive, shear and facet joint forces at C3-C6 disk levels were predicted, during the head flexion/extension, lateral bending and axial rotation. Under the head flexion/extension movement, asymmetric loading patterns of the intervertebral disk were obtained. In comparison, symmetrical typed loading patterns were found for the head lateral bending and axial rotation movements. However, the shear forces were dramatically increased during the head excessive extension and lateral bending. Besides, a nonlinear correlation was seen between the facet joint force and the angular displacement. In conclusion, dynamic cervical sp
机译:宫颈脊柱疾病导致个人和社会的繁重的经济负担。此外,频繁的术后并发症意味着颈部疼痛和修订的风险较高。目前,争议仍然存在脊柱疾病的病因及其相关的并发症。提出了对体内宫颈脊髓载荷模式的知识成为回答这些问题的关键。然而,直接收购体内颈椎脊髓载荷仍然具有挑战性。在该研究中,用于脊柱负载预测使用先前显影的颈椎肌肉骨骼多体动力学模型。对头部运动的体内动态分段贡献和平面外耦合运动均考虑在内。首先,进行了对头动作的不同节段性贡献的模型验证和灵敏度分析。对于模型验证,将预测的椎间盘压缩力转化为胎盘压力,并与已发表的实验测量进行比较。在预测值与实验结果之间发现了显着的相关性。因此,确保了宫颈脊柱模型的可靠性和能力。同时,敏感性分析表明,宫颈脊柱载荷对头部运动的不同节段贡献敏感。其次,预测了在头部屈屈/延伸期间,横向弯曲和轴向旋转期间的C3-C6磁盘水平处的压缩,剪切和刻面关节力。在头部屈曲/延伸运动下,获得椎间盘的不对称负载图案。相比之下,找到对称类型的装载图案,用于头部横向弯曲和轴向旋转运动。然而,在头部过度延伸和横向弯曲期间,剪切力显着增加。此外,在面部接合力和角位移之间看到非线性相关性。总之,动态颈椎SP

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