扭转加载对骨质疏松椎体屈曲影响的虚拟建模。

Acta of bioengineering and biomechanics Pub Date : 2024-04-15 Print Date: 2024-06-01 DOI:10.37190/abb-02392-2024-03
Olga Chabarova, Jelena Selivonec
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引用次数: 0

摘要

目的:本研究旨在评估骨质疏松的 L1 椎体在扭转负荷下的生物力学响应或负荷转移。研究方法为实现这一目标,研究人员开发并测试了不同骨小梁退化情况下骨质疏松椎体的数值模型。该模型的机械行为表现考虑了松质骨的各向异性,为生物子系统提供了更真实的机械图像。为确保骨质疏松退化的可靠性,在创建模型时还考虑了皮质骨变薄以及骨小梁和皮质骨之间出现间隙的情况。结果有限元(FE)分析表明,皮质骨变薄和皮质骨与骨小梁组织分离的变形会导致椎体局部失稳。因此,即使未达到强度极限,椎体的皮质骨也会失去承重能力。结论:研究结果表明,考虑到造成空洞的骨小梁变薄对骨质疏松椎体的承重能力极为重要。然而,这项研究的局限性在于缺乏实验数据以确保与计算机模拟结果的一致性。
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Virtual modelling of the impact of torsional loading on osteoporotic vertebrae buckling.

Purpose: This study aimed to evaluate the biomechanical response or load transfer on the osteoporotic L1 vertebra under torsional loading. Methods: To achieve this goal, a numerical model of osteoporotic vertebra in various trabecular bone degenerations was developed and tested. The mechanical behavior of the model was represented taking into account the anisotropic properties of the cancellous bone, which provided a more realistic mechanical picture of the biological subsystem. To ensure the reliability of osteoporotic degradation, the thinning of cortical bone and the appearance of gaps between trabecular bone and cortical bone were also taken into account when creating the models. Results: Finite element (FE) analysis showed that the deformations of cortical bone thinning and detachment of the cortical bone from the trabecular tissue lead to local instability of the vertebra. As a result, the cortical bone of a vertebra loses its load-bearing capacity, even if the strength limit is not reached. Conclusions: The results obtained allow us to state that taking into account the thinning of the trabeculae, which creates voids, is extremely important for load-bearing capacity of osteoporotic vertebrae. However, a limitation of this study is the lack of experimental data to ensure consistency with the computer simulation results.

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