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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Water Film or Water Bridge? Influence of Self-Generated Electric Field on Coexisting Patterns of Water and Methane in Clay Nanopores
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Water Film or Water Bridge? Influence of Self-Generated Electric Field on Coexisting Patterns of Water and Methane in Clay Nanopores

机译:水膜或水桥? 自发电电场对粘土纳米孔水和甲烷共存模式的影响

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Water always occurs in gas shales, especially during the treatment of shale gas hydraulic fracturing. In sharp contrast to the prevailing view that water film is ubiquitous in shale formations, we observed an unusual phenomenon that water bridge instead of water film dominates in some illite and kaolinite slit pores when we are investigating the coexisting pattern of water and methane inside shale nanopores using molecular dynamics simulations. The network orientation structure and hydrogen bond of water molecules are analyzed, and the results indicate that appearance of water bridge is attributed to the strong internal, self-generated electric field induced by surface charge contrast between different pore surfaces. Four factors can significantly influence this self-generated electric field strength: pore surface chemistry, mineral type, pore shape, and pore size. When the pore size is within several nanometers, a small charge difference could induce strong electric field and change the structural properties of water clusters. The water film or water bridge inside shale nanopores alters the hydraulic diameter of the pore and the fluid flow pattern. These findings may provide a better and microscopic insight of the water-gas flow behavior and the electric field inside clay nanopores.
机译:水总是发生在天然气子节中,特别是在处理页岩气水力压裂过程中。在鲜明对比的鲜明对比中,水膜在页岩形成中普遍存在,我们观察了一种不寻常的现象,即水桥而不是水膜在一些伊利石和高岭石裂缝孔中占据占据主导的水膜,当我们正在研究页岩纳米孔内的水和甲烷的共存模式时使用分子动力学模拟。分析了水分子的网络取向结构和氢键,结果表明,水桥的外观归因于不同孔表面之间的表面电荷对比度诱导的强大内置电场。四个因素可以显着影响这种自我产生的电场强度:孔隙表面化学,矿物型,孔隙和孔径。当孔径在几纳米内时,小电荷差可以诱导强电场并改变水簇的结构性。页岩内部的水膜或水桥改变了孔的液压和流体流动图案。这些发现可以提供对水气流行为和粘土纳米孔内的电场的更好和微观的洞察力。

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