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首页> 外文期刊>Computer methods in biomechanics and biomedical engineering >Multi-scale finite element modelling at the posterior lumbar vertebra: analysis of pedicle stresses due to pars fracture
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Multi-scale finite element modelling at the posterior lumbar vertebra: analysis of pedicle stresses due to pars fracture

机译:腰椎后椎骨的多尺度有限元建模:由于pars骨折引起的椎弓根应力分析

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Multi-scale finite element (FE) model is a cost-effective way to analyse stress response of micro-level structures to the changes in loading at macro-level. This study deals with the development of a multi-scale model of a human vertebra and stress changes in the pedicle at high resolution after a gross fracture at the posterior neural arch. Spondylolysis (pars fracture) is a painful condition occurring in the vertebral neural arch and common especially among the athletic young population. The fracture of the pars significantly alters load distribution and load transfer characteristics at the neural arch. Structural changes in the posterior vertebra due to the new loading patterns can trigger secondary complications. Clinical reports have shown the association of pedicle hypertrophy or pedicle fracture with unilateral pars fractures. However, the biomechanical consequences of pars fracture and its effect on the pedicle have never been studied in detail. Therefore, we prepared a multi-scale model of posterior vertebra with continuum laminar complex model combined with micro-FE model of a pedicle section. The results showed that stress at the contralateral pars and pedicle increased after unilateral pars fracture simulation. High-stress regions were found around the outer boundaries of the pedicle. This model and information are helpful in understanding the stress changes in the pedicle and can be used for adaptive remodelling studies.
机译:多尺度有限元(FE)模型是一种经济高效的方法,可用于分析微观结构对宏观水平荷载变化的应力响应。这项研究涉及人类椎骨的多尺度模型的发展,以及后神经弓严重骨折后椎弓根在高分辨率下的应力变化。脊椎骨溶解症(pars骨折)是一种痛苦的状况,发生在椎骨神经弓中,并且在运动的年轻人群中很常见。杆的断裂明显改变了神经弓处的载荷分布和载荷传递特性。由于新的负荷模式,后椎骨的结构变化会引发继发性并发症。临床报告表明,椎弓根肥大或椎弓根骨折与单侧pars骨折有关。然而,pars骨折的生物力学后果及其对椎弓根的影响尚未得到详细研究。因此,我们结合椎弓根切面的微观有限元模型,建立了连续椎板复杂模型的多尺度后椎模型。结果表明,单侧lateral骨骨折模拟后,对侧par骨和椎弓根的应力增加。在椎弓根的外边界周围发现高应力区域。该模型和信息有助于理解椎弓根的应力变化,并可用于适应性重塑研究。

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