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在ArtiSynth中腰骶椎新型混合模型的校准与验证——被动结构

Calibration and validation of a novel hybrid model of the lumbosacral spine in ArtiSynth-The passive structures.

作者信息

Remus Robin, Lipphaus Andreas, Neumann Marc, Bender Beate

机构信息

Chair of Product Development, Department of Mechanical Engineering, Ruhr-University Bochum, Bochum, Germany.

Biomechanics Research Group, Chair of Product Development, Department of Mechanical Engineering, Ruhr-University Bochum, Bochum, Germany.

出版信息

PLoS One. 2021 Apr 26;16(4):e0250456. doi: 10.1371/journal.pone.0250456. eCollection 2021.

Abstract

In computational biomechanics, two separate types of models have been used predominantly to enhance the understanding of the mechanisms of action of the lumbosacral spine (LSS): Finite element (FE) and musculoskeletal multibody (MB) models. To combine advantages of both models, hybrid FE-MB models are an increasingly used alternative. The aim of this paper is to develop, calibrate, and validate a novel passive hybrid FE-MB open-access simulation model of a ligamentous LSS using ArtiSynth. Based on anatomical data from the Male Visible Human Project, the LSS model is constructed from the L1-S1 rigid vertebrae interconnected with hyperelastic fiber-reinforced FE intervertebral discs, ligaments, and facet joints. A mesh convergence study, sensitivity analyses, and systematic calibration were conducted with the hybrid functional spinal unit (FSU) L4/5. The predicted mechanical responses of the FSU L4/5, the lumbar spine (L1-L5), and the LSS were validated against literature data from in vivo and in vitro measurements and in silico models. Spinal mechanical responses considered when loaded with pure moments and combined loading modes were total and intervertebral range of motions, instantaneous axes and centers of rotation, facet joint contact forces, intradiscal pressures, disc bulges, and stiffnesses. Undesirable correlations with the FE mesh were minimized, the number of crisscrossed collagen fiber rings was reduced to five, and the individual influences of specific anatomical structures were adjusted to in vitro range of motions. Including intervertebral motion couplings for axial rotation and nonlinear stiffening under increasing axial compression, the predicted kinematic and structural mechanics responses were consistent with the comparative data. The results demonstrate that the hybrid simulation model is robust and efficient in reproducing valid mechanical responses to provide a starting point for upcoming optimizations and extensions, such as with active skeletal muscles.

摘要

在计算生物力学中,主要使用两种不同类型的模型来加深对腰骶椎(LSS)作用机制的理解:有限元(FE)模型和肌肉骨骼多体(MB)模型。为了结合这两种模型的优点,混合FE-MB模型正成为越来越常用的替代方案。本文的目的是使用ArtiSynth开发、校准和验证一种新型的韧带性LSS被动混合FE-MB开放获取模拟模型。基于男性可视人体项目的解剖学数据,LSS模型由L1-S1刚性椎体构建而成,这些椎体通过超弹性纤维增强的FE椎间盘、韧带和小关节相连。对混合功能脊柱单元(FSU)L4/5进行了网格收敛研究、敏感性分析和系统校准。FSU L4/5、腰椎(L1-L5)和LSS的预测力学响应与来自体内和体外测量以及计算机模型的文献数据进行了验证。在承受纯力矩和组合加载模式时考虑的脊柱力学响应包括总运动范围和椎间运动范围、瞬时轴和旋转中心、小关节接触力、椎间盘内压力、椎间盘膨出和刚度。与FE网格的不良相关性降至最低,交叉胶原纤维环的数量减少到五个,特定解剖结构的个体影响被调整到体外运动范围。包括轴向旋转的椎间运动耦合和轴向压缩增加时的非线性强化,预测的运动学和结构力学响应与比较数据一致。结果表明,该混合模拟模型在再现有效力学响应方面具有鲁棒性和高效性,为即将到来的优化和扩展(如与主动骨骼肌相关的优化和扩展)提供了一个起点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6464/8075237/1f8d450dd8c4/pone.0250456.g001.jpg

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