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A phase field approach for bone remodeling based on a second-gradient model

机译:基于第二梯度模型的骨重塑的相位现场方法

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A mechanobiological model of bone remodeling is developed involving mineralization in a moving diffuse interface separating the marrow containing the bone cells responsible for the remodeling from the newly formed bone. A scalar phase field quantifies the degree of mineralization within the interface at the level of the bone microstructure, varying continuously between the nil lower value (no mineral) and unity for the fully mineralized phase corresponding to new bone. The field equations for the mechanical, chemical, and interfacial phenomena are written under the umbrella of thermodynamics of irreversible processes. A strain gradient model is developed to account for the impact of the underlying hierarchical microstructure on the effective response of bone. Second gradient terms are motivated by the high strain and stress concentrations close to defects, both at mesoscopic and microscopic scales. The combination of the balance equations for the microforce associated to the phase field and the kinetic equations lead to the Ginzburg-Landau equation for by the phase field with a source term accounting for the dissipative microforce. (C) 2019 Elsevier Ltd. All rights reserved.
机译:开发了骨质重塑的力学模型,涉及在移动漫反射界面中的矿化,将含有负责从新形成的骨的重塑的骨髓分离。标量域在骨微观结构的水平下量化界面内的矿化程度,在含量较低的值(无矿物)和对应于新骨的完全矿化相之间的统一之间的连续变化。机械,化学和界面现象的现场方程写在不可逆过程的热力学伞下。开发应变梯度模型以考虑潜在的分层微观结构对骨骼有效响应的影响。第二梯度术语通过在介术和微观尺度的高菌株和粘应激浓度接近缺陷而激励。与相位场和动力学方程相关联的微细结构的平衡方程的组合导致相位领域的Ginzburg-Landau方程,具有耗散微细的源期核对。 (c)2019年elestvier有限公司保留所有权利。

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