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Efficient materially nonlinear mu FE solver for simulations of trabecular bone failure

机译:高效材料非线性MU FE求解器,用于模拟小梁骨衰竭

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摘要

An efficient solver for large-scale linear mu FEsimulations was extended for nonlinear material behavior. The material model included damage-based tissue degradation and fracture. The new framework was applied to 20 trabecular biopsies with a mesh resolution of 36 mu mSuitable material parameters were identified based on two biopsies by comparison with axial tension and compression experiments. The good parallel performance and low memory footprint of the solver were preserved. Excellent correlation of the maximum apparent stress was found between simulations and experiments (R2>0.97 The development of local damage regions was observable due to the nonlinear nature of the simulations. A novel elasticity limit was proposed based on the local damage information. The elasticity limit was found to be lower than the 0.2% yield point. Systematic differences in the yield behavior of biopsies under apparent compression and tension loading were observed. This indicates that damage distributions could lead to more insight into the failure mechanisms of trabecular bone.
机译:为非线性材料行为延长了用于大规模线性μ瘘管的有效求解器。材料模型包括基于损伤的组织降解和裂缝。通过与轴向张力和压缩实验相比,将新框架应用于20个小梁分辨物,其基于两个活组织检查,鉴定了36μSMSSI联的材料参数的网状分辨率。保存了良好的并行性能和求解器的低内存占用空间。在模拟和实验之间发现了最大明显应力的优异相关性(R2> 0.97由于模拟的非线性性质,局部损伤区的发育是可观察到的。基于局部损害信息提出了一种新的弹性极限。弹性极限被发现低于0.2%的屈服点。观察到表观压缩和张力负荷下活组织检查的产量行为的系统差异。这表明损坏分布可能导致对小梁骨的失效机制有更多的洞察力。

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