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Multiphysics of bone remodeling: A 2D mesoscale activation simulation

机译:骨质重塑的多体学:2D Mescle激活模拟

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摘要

In this work, we present an evolutive trabecular model for bone remodeling based on a boundary detection algorithm accounting for both biology and applied mechanical forces, known to be an important factor in bone evolution. A finite element (FE) numerical model using the Abaqus/Standard (R) software was used with a UMAT subroutine to solve the governing coupled mechanical-biological non-linear differential equations of the bone evolution model. The simulations present cell activation on a simplified trabeculae configuration organization with trabecular thickness of 200 mu m. For this activation process, the results confirm that the trabeculae are mainly oriented in the active direction of the principal mechanical stresses and according to the principal applied mechanical load directions. The trabeculae surface activation is clearly identified and can provide understanding of the different bone cell activations in more complex geometries and load conditions.
机译:在这项工作中,我们介绍了一种基于对生物学和应用机械力的边界检测算法的骨重塑的演变模型模型,已知是骨骼进化中的一个重要因素。 使用ABAQUS /标准(R)软件的有限元(FE)数值模型与UMAT子程序一起使用,以解决骨骼进化模型的控制耦合机械生物学非线性微分方程。 仿真在简化的小梁构造组织上存在细胞激活,具有200μm的粗略厚度。 对于该激活过程,结果证实,小梁主要在主机械应力的主动方向上取向,并根据主要应用的机械负载方向。 清楚地识别出小梁表面激活,并且可以在更复杂的几何形状和负载条件下提供不同骨细胞激活的理解。

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