首页> 美国卫生研究院文献>Frontiers in Bioengineering and Biotechnology >An Efficient Modelling-Simulation-Analysis Workflow to Investigate Stump-Socket Interaction Using Patient-Specific Three-Dimensional Continuum-Mechanical Finite Element Residual Limb Models
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An Efficient Modelling-Simulation-Analysis Workflow to Investigate Stump-Socket Interaction Using Patient-Specific Three-Dimensional Continuum-Mechanical Finite Element Residual Limb Models

机译:使用特定于患者的三维连续力学有限元残肢模型研究桩-窝相互作用的有效建模-仿真-分析工作流

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摘要

The lack of an efficient modelling-simulation-analysis workflow for creating and utilising detailed subject-specific computational models is one of the key reasons why simulation-based approaches for analysing socket-stump interaction have not yet been successfully established. Herein, we propose a novel and efficient modelling-simulation-analysis workflow that uses commercial software for generating a detailed subject-specific, three-dimensional finite element model of an entire residual limb from Diffusion Tensor MRI images in <20 min. Moreover, to complete the modelling-simulation-analysis workflow, the generated subject-specific residual limb model is used within an implicit dynamic FE simulation of bipedal stance to predict the potential sites of deep tissue injury. For this purpose, a nonlinear hyperelastic, transversely isotropic skeletal muscle constitutive law containing a deep tissue injury model was implemented in LS-DYNA. To demonstrate the feasibility of the entire modelling-simulation-analysis workflow and the fact that detailed, anatomically realistic, multi-muscle models are superior to state-of-the-art, fused-muscle models, an implicit dynamic FE analysis of 2-h bipedal stance is carried out. By analysing the potential volume of damaged muscle tissue after donning an optimally-fitted and a misfitted socket, i.e., a socket whose volume was isotropically shrunk by 10%, we were able to highlight the differences between the detailed individual- and fused-muscle models. The results of the bipedal stance simulation showed that peak stresses in the fused-muscle model were four times lower when compared to the multi-muscle model. The peak interface stress in the individual-muscle model, at the end of bipedal stance analysis, was 2.63 times lower than that in the deep tissues of the stump. At the end of the bipedal stance analysis using the misfitted socket, the fused-muscle model predicted that 7.65% of the residual limb volume was injured, while the detailed-model predicted 16.03%. The proposed approach is not only limited to modelling residual limbs but also has applications in predicting the impact of plastic surgery, for detailed forward-dynamics simulations of normal musculoskeletal systems.
机译:缺少用于创建和利用特定主题的详细计算模型的有效建模-模拟-分析工作流程的缺乏,是尚未成功建立基于模拟的套接字-桩交互分析方法的关键原因之一。在这里,我们提出了一种新颖而有效的建模仿真分析工作流,该工作流使用商业软件在不到20分钟的时间内从扩散张量MRI图像生成整个残肢的详细的特定于对象的三维有限元模型。此外,为了完成建模仿真分析工作流程,将生成的特定对象残肢模型用于双足姿势的隐式动态有限元仿真中,以预测深层组织损伤的潜在部位。为此,在LS-DYNA中实施了包含深层组织损伤模型的非线性超弹性,横向各向同性骨骼肌本构关系。为了证明整个建模仿真分析工作流程的可行性,以及详细,解剖学逼真的多肌肉模型优于最新的融合肌肉模型(2-的隐式动态有限元分析)这一事实, h进行双足站立。通过分析在佩戴最佳配合和不配合的承窝(即,各向同性收缩的体积为10%的承窝)后受损肌肉组织的潜在体积,我们能够突出显示详细的单个肌肉模型和融合肌肉模型之间的差异。双足姿势模拟的结果表明,与多肌肉模型相比,融合肌肉模型中的峰值应力低四倍。在两足动物姿势分析结束时,在单个肌肉模型中的峰值界面应力比树桩深层组织的峰值界面应力低2.63倍。在使用不适合的承窝进行的双足姿势分析结束时,融合肌肉模型预测受伤的残肢体积为7.65%,而详细模型预测为16.03%。所提出的方法不仅限于对残肢建模,而且在预测整形外科手术的影响方面具有应用,可用于正常肌肉骨骼系统的详细正向动力学模拟。

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