首页> 外文期刊>Communications in Numerical Methods in Engineering >Subject‐specific loads on the lumbar spine in detailed finite element models scaled geometrically and kinematic‐driven by radiography images
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Subject‐specific loads on the lumbar spine in detailed finite element models scaled geometrically and kinematic‐driven by radiography images

机译:在详细的有限元模型中腰椎上的特定主题载荷在几何上和运动驱动的射线摄影

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摘要

Traditional load-control musculoskeletal and finite element (FE) models of the spine fail to accurately predict in vivo intervertebral joint loads due mainly to the simplifications and assumptions when estimating redundant trunk muscle forces. An alternative powerful protocol that bypasses the calculation of muscle forces is to drive the detailed FE models by image-based in vivo displacements. Development of subject-specific models, however, both involves the risk of extensive radiation exposures while imaging in supine and upright postures and is time consuming in terms of the reconstruction of the vertebrae, discs, ligaments, and facets geometries. This study therefore aimed to introduce a remedy for the development of subject-specific FE models by scaling the geometry of an existing detailed FE model of the T12-S1 lumbar spine. Five subject-specific scaled models were driven by their own radiography image-based displacements in order to predict joint loads, ligament forces, facet joint forces, and disc fiber strains during relaxed upright as well as moderate flexion and extension tasks. The predicted intradiscal pressures were found in adequate agreement with in vivo data for upright, flexion, and extension tasks. There were however large intersubject variations in the estimated joint loads and facet forces.
机译:传统的载荷控制肌肉骨骼和有限元(FE)脊柱的型号未能在体内椎间关节载荷中准确预测,主要是在估算冗余躯干肌肉力时的简化和假设。一种替代的强大协议,绕过肌肉力的计算是通过基于图像的体内位移来驱动详细的FE模型。然而,既涉及以仰卧和直立姿势成像的同时涉及广泛辐射曝光的风险,并且在重建椎骨,圆盘,韧带和刻面几何形状时耗时。因此,本研究旨在通过缩放T12-S1腰椎的现有Fe模型的几何形状来引入对主题特定FE模型的措施。通过其自身的放射线照相图像的位移驱动了五个特定于主题的缩放模型,以便在弛豫直立和中等屈曲和延伸任务期间预测关节载荷,韧带力,面关节力和盘纤维菌株。预测的内压力是在适当的协议中,用于直立,屈曲和延长任务的体内数据。然而,估计的关节载荷和面部力量的大于差管变化。

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