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Poromechanics Parameters of Fluid-Saturated Chemically Active Fibrous Media Derived from a Micromechanical Approach

机译:从微力学方法派生的流体饱和化学活性纤维介质的孔隙力学参数

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The authors have derived macroscale poromechanics parameters for chemically active saturated fibrous media by combining microstructure-based homogenization with Hill's volume averaging. The stress-strain relationship of the dry fibrous media is first obtained by considering the fiber behavior. The constitutive relationships applicable to saturated media are then derived in the poromechanics framework using Hill's Lemmas. The advantage of this approach is that the resultant continuum model assumes a form suited to study porous materials, while retaining the effect of discrete fiber deformation. As a result, the model is able to predict the influence of microscale phenomena such as fiber buckling on the overall behavior, and in particular, on the poromechanics constants. The significance of the approach is demonstrated using the effect of drainage and fiber nonlinearity on monotonic compressive stress-strain behavior. The model predictions conform to the experimental observations for articular cartilage. The method can potentially be extended to other porous materials such as bone, clays, foams, and concrete.
机译:作者结合了基于微观结构的均质化与Hill的体积平均,得出了化学活性饱和纤维介质的宏观尺度力学参数。首先通过考虑纤维的行为来获得干燥纤维介质的应力-应变关系。然后使用Hill的Lemmas在poromechanics框架中导出适用于饱和介质的本构关系。这种方法的优势在于,所得的连续体模型采用适合研究多孔材料的形式,同时保留了离散纤维变形的影响。结果,该模型能够预测微观现象,例如纤维屈曲,对整体性能的影响,特别是对poromechanics常数的影响。通过排水和纤维非线性对单调压缩应力-应变行为的影响,证明了该方法的重要性。该模型预测符合关节软骨的实验观察。该方法可以潜在地扩展到其他多孔材料,例如骨头,粘土,泡沫和混凝土。

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