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Musculoskeletal modelling of the human cervical spine for the investigation of injury mechanisms during axial impacts

机译:人类颈椎的肌肉骨骼建模,以研究轴向撞击过程中的损伤机制

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摘要

Head collisions in sport can result in catastrophic injuries to the cervical spine. Musculoskeletal modelling can help analyse the relationship between motion, external forces and internal loads that lead to injury. However, impact specific musculoskeletal models are lacking as current viscoelastic values used to describe cervical spine joint dynamics have been obtained from unrepresentative quasi-static or static experiments. The aim of this study was to develop and validate a cervical spine musculoskeletal model for use in axial impacts. Cervical spine specimens (C2-C6) were tested under measured sub-catastrophic loads and the resulting 3D motion of the vertebrae was measured. Specimen specific musculoskeletal models were then created and used to estimate the axial and shear viscoelastic (stiffness and damping) properties of the joints through an optimisation algorithm that minimised tracking errors between measured and simulated kinematics. A five-fold cross validation and a Monte Carlo sensitivity analysis were conducted to assess the performance of the newly estimated parameters. The impact-specific parameters were integrated in a population specific musculoskeletal model and used to assess cervical spine loads measured from Rugby union impacts compared to available models. Results of the optimisation showed a larger increase of axial joint stiffness compared to axial damping and shear viscoelastic parameters for all models. The sensitivity analysis revealed that lower values of axial stiffness and shear damping reduced the models performance considerably compared to other degrees of freedom. The impact-specific parameters integrated in the population specific model estimated more appropriate joint displacements for axial head impacts compared to available models and are therefore more suited for injury mechanism analysis.
机译:运动中的头部碰撞可能导致颈椎严重受伤。肌肉骨骼建模可以帮助分析运动,外力和导致受伤的内部载荷之间的关系。然而,由于从不具代表性的准静态或静态实验中获得了用于描述颈椎关节动力学的当前粘弹性值,因此缺少了影响特定的肌肉骨骼模型。这项研究的目的是开发和验证用于轴向撞击的颈椎肌肉骨骼模型。颈椎标本(C2-C6)在亚灾难性载荷下进行测试,并测量由此产生的椎骨3D运动。然后创建标本特定的肌肉骨骼模型,并通过一种优化算法来估计关节的轴向和剪切粘弹性(刚度和阻尼)特性,该算法将测量和模拟运动学之间的跟踪误差最小化。进行了五次交叉验证和蒙特卡洛敏感性分析,以评估新估算参数的性能。特定于冲击的参数已集成到特定于人群的肌肉骨骼模型中,并用于评估根据橄榄球联合冲击与可用模型相比测得的颈椎负荷。优化结果显示,与所有模型的轴向阻尼和剪切粘弹性参数相比,轴向接头刚度的增加更大。敏感性分析显示,与其他自由度相比,较低的轴向刚度和剪切阻尼值会大大降低模型的性能。与可用模型相比,集成在特定人群模型中的特定于冲击的参数估计出对于轴向头部撞击更合适的关节位移,因此更适合于损伤机理分析。

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