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Possible Approaches in Modelling Rearrangement in a Microstructured Material

机译:在微结构材料中重排建模的可能方法

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Biological materials can be regarded as composites with spheroidal and fibre-like inclusions, representing cells and collagen fibres, respectively. The orientation and arrangement of the inclusions in a biological tissue is crucial to the determination of the mechanical properties of the material. Furthermore, the reorientation and rearrangement of the inclusions due to the deformation and external forces is of primary interest when dealing with growth and remodelling. We propose to look at the presence of inclusions as a source of internal hyperstaticity: when the material undergoes deformation, a generic inclusion is drifted by the deformation, but at the same time it "feels" the stress field and tends to carry a portion of stress proportional to its stiffness relative to that of the surrounding matrix. With this assumption, we can extend the classical "drift" evolution law for the unit vector field, in order to take the hyperstaticity into account. This method might be used in the description of remodelling in disordered media, such as biological tissues, and may be extended to investigate the reorientation of preferred directions of micro-structural elements in media described with a continuum approach.
机译:可以将生物材料视为具有球形和纤维状内含物的复合材料,分别代表细胞和胶原纤维。夹杂物在生物组织中的取向和排列对于确定材料的机械性能至关重要。此外,当处理生长和重塑时​​,由于变形和外力引起的夹杂物的重新定向和重新排列是最重要的。我们建议将夹杂物视为内部超静态性的来源:当材料发生变形时,普通夹杂物因变形而漂移,但同时它“感觉”到应力场并倾向于承载一部分应力。应力与其刚度相对于周围矩阵的刚度成正比。以此假设为基础,我们可以将经典的“漂移”演化定律扩展到单位矢量场,以考虑到超静态性。该方法可用于描述无序介质(例如生物组织)中的重塑,并可扩展以研究用连续方法描述的介质中微结构元件的优选方向的重新定向。

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