[固液两相纤维增强腰椎间盘的有限元建模与仿真研究]。

Q4 Medicine
Yongchang Gao, Yantao Fu, Qingfeng Cui, Shibin Chen, Peng Liu, Xifang Liu
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引用次数: 0

摘要

腰椎间盘具有复杂的生理结构,各节段之间相互作用,其组成极为复杂。腰椎间盘不同组成部分的材料特性,尤其是含水量(受年龄、退行性变、机械负荷和蛋白聚糖含量的影响而发生动态变化),对其力学特性起着关键的决定作用。当腰椎间盘持续受压时,水分渗出,压力解除后,水分再次浸润。这种动态流体交换过程直接影响腰椎间盘的力学性能,而以往的各向同性建模方法无法准确反映这种固液相行为。为探索腰椎间盘的受力机制,建立更为真实的腰椎间盘力学模型,本研究建立了固液双相纤维增强有限元模型。该模型模拟了人类腰椎在日常生活中的四种运动,即屈曲、伸展、轴向旋转和侧向弯曲。比较分析不同椎间盘纤维环和髓核在运动下的流体压力、有效固应力和液体承压比。在所有运动下,流体压力分布更靠近髓核,而有效固体应力分布更集中于纤维外环。在流体压力方面,侧弯时腰椎间盘的最大流体压力为1.95 MPa,明显高于其他运动下的最大流体压力。同时,屈曲时腰椎间盘最大有效实体应力为2.43 MPa,明显高于其他运动下的最大有效实体应力。总体而言,轴向旋转下的液体承压比小于其他运动下的液体承压比。本研究基于固液双相建模方法,更准确地揭示了液相在腰椎间盘日常负重过程中的主导作用和纤维环负重的固相力学机制,更有效地预测了腰椎间盘在日常生活中的固液共负重机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
[Finite element modeling and simulation study of solid-liquid biphase fiber-reinforced lumbar intervertebral disc].

The lumbar intervertebral disc exhibits a complex physiological structure with interactions between various segments, and its components are extremely complex. The material properties of different components in the lumbar intervertebral disc, especially the water content (undergoing dynamic change as influenced by age, degeneration, mechanical loading, and proteoglycan content) - critically determine its mechanical properties. When the lumbar intervertebral disc is under continuous pressure, water seeps out, and after the pressure is removed, water re-infiltrates. This dynamic fluid exchange process directly affects the mechanical properties of the lumbar intervertebral disc, while previous isotropic modeling methods have been unable to accurately reflect such solid-liquid phase behaviors. To explore the load-bearing mechanism of the lumbar intervertebral disc and establish a more realistic mechanical model of the lumbar intervertebral disc, this study developed a solid-liquid biphasic, fiber-reinforced finite element model. This model was used to simulate the four movements of the human lumbar spine in daily life, namely flexion, extension, axial rotation, and lateral bending. The fluid pressure, effective solid stress, and liquid pressure-bearing ratio of the annulus fibrosus and nucleus pulposus of different lumbar intervertebral discs were compared and analyzed under the movements. Under all the movements, the fluid pressure distribution was closer to the nucleus pulposus, while the effective solid stress distribution was more concentrated in the outer annulus fibrosus. In terms of fluid pressure, the maximum fluid pressure of the lumbar intervertebral disc during lateral bending was 1.95 MPa, significantly higher than the maximum fluid pressure under other movements. Meanwhile, the maximum effective solid stress of the lumbar intervertebral disc during flexion was 2.43 MPa, markedly higher than the maximum effective solid stress under other movements. Overall, the liquid pressure-bearing ratio under axial rotation was smaller than that under other movements. Based on the solid-liquid biphasic modeling method, this study more accurately revealed the dominant role of the liquid phase in the daily load-bearing process of the lumbar intervertebral disc and the solid-phase mechanical mechanism of the annulus fibrosus load-bearing, and more effectively predicted the solid-liquid phase co-load-bearing mechanism of the lumbar intervertebral disc in daily life.

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来源期刊
生物医学工程学杂志
生物医学工程学杂志 Medicine-Medicine (all)
CiteScore
0.80
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0.00%
发文量
4868
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