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Engineering models for synthetic microvascular materials with interphase mass, momentum and energy transfer

机译:具有相间质量,动量和能量转移的合成微血管材料的工程模型

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New materials are being developed that consist of a solid matrix with pores or vessels through which a functional fluid phase may pass. The fluid can provide expanded functionality such as healing and remodeling, damage disclosure, enhanced heat transfer, and controlled deformation, stiffness and damping. This paper presents a class of engineering models for synthetic microvascular materials that have fluid passages much smaller than a characteristic structural length such as panel thickness. The materials are idealized as two-phase continua with a solid phase and a fluid phase occupying every volume. The model permits the solid and fluid phases to exchange mass, momentum and energy. Balance equations and the entropy inequality for general mixtures are taken from existing continuum mixture theory. These are augmented with certain definite types of solid-fluid interactions in order to enable adequately general, but workable, engineering analysis. The thermomechanical characteristics of this restricted class of materials are delineated. By demanding that the law of increase of entropy be satisfied for all processes, much is deduced about the acceptable forms of constitutive equations and internal state variable evolution equations. The paper concludes with a study of the uniaxial tension behavior of an idealized vascular material.
机译:正在开发由具有孔或容器的固体基质组成的新材料,功能性流体相可以通过这些孔或容器。流体可以提供扩展的功能,例如修复和重塑,损伤披露,增强的热传递以及受控的变形,刚度和阻尼。本文提出了一种合成微血管材料的工程模型,这些材料的流体通道远小于特征结构长度(如面板厚度)。该材料被理想化为两相连续体,其中固相和液相占据了每个体积。该模型允许固相和流体相交换质量,动量和能量。一般混合物的平衡方程和熵不等式均来自现有的连续体混合物理论。为了增加适当的一般性但可行的工程分析,可以使用某些确定类型的固液相互作用来增强这些功能。描述了这种受限材料的热机械特性。通过要求所有过程都满足熵的增长规律,就可以得出本构方程和内部状态变量演化方程的可接受形式的很多信息。本文以理想化血管材料的单轴拉伸行为为研究结尾。

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