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Compressing liquid nanofoam systems: liquid infiltration or nanopore deformation?

机译:压缩液体nanofoam系统:液体渗透或纳米孔变形?

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Understanding the invasion of a liquid into porous structures is the foundation of the characterization of the porosity-related properties of materials and is also of fundamental importance in the design of porous solid-liquid enabled energy protection systems, yet whether solid pores deform has been unclear so far. Here, we present a competition mechanism between liquid infiltration and cell wall buckling deformation by investigating a liquid nanofoam (LN) system subjected to quasi-static compression. The critical buckling stress of the cell wall and the infiltration pressure of liquid invasion into nanopores are studied and correlated through numerical simulation and experimental validation to reveal the quantitative relationship between nanopore deformation and liquid invasion. The analysis shows that liquid infiltration occurs, independent of the axial buckling stress of the cell wall; in contrast, the nanopore collapses radially when the radial collapse pressure is lower than the pressure of liquid infiltration, preventing the liquid invasion. Comprehensive molecular dynamics (MD) simulations are performed and demonstrate the deformation behavior of nanopores and cell wall-liquid interactions in a broad range. Pressure-induced compression experiments on a silica-based LN system are carried out and validate these theoretical and MD results.
机译:了解液体在多孔的入侵结构的基础描述的porosity-related材料的属性,也是的多孔的基本设计的重要性固液使能源保护系统,是否固体孔隙变形一直不清楚到目前为止。液体渗透和细胞壁之间通过调查液体翘曲变形nanofoam (LN)系统进行准静态压缩。细胞壁和液体的渗透压力入侵研究和纳米孔通过数值模拟和相关实验验证,揭示了纳米孔之间的定量关系变形和液体入侵。表明,液体渗透时,独立的轴向屈曲应力细胞壁;径向时径向压力崩溃的压力低于液体渗透,防止液体入侵。分子动力学(MD)模拟执行和演示的变形行为在纳米孔和细胞wall-liquid交互范围广泛。硅基LN系统实验实施和验证这些理论和医学博士结果。

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