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Molecular Dynamics Analysis of the Vaporization Process for Two Nano-Scale Liquid Threads Coexisting in a Periodic Fundamental Cell

机译:周期性基本细胞中共存的两个纳米级液体线的汽化过程的分子动力学分析。

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Previous studies of nano-scale liquid threads have almost entirely been devoted to the investigation of a single liquid thread in a periodic fundamental cell. This paper is the first to study the vaporization process of two nano-scale liquid threads coexisting in a periodic fundamental cell by molecular dynamics (MD) simulation. Because of the interaction between the two liquid threads, the vaporization process is different from that of a single liquid thread in a periodic fundamental cell. This study discusses the influences of the liquid thread radius, fundamental cell length, and relative position of the two threads. Snapshots of molecules, the number of liquid particles formed, and density field are analyzed. Two linear stability criteria, namely, Rayleigh's stability criterion and Kim's stability criterion, are accessed for their validity in molecular scale. It is found that the two liquid threads may remain intact or evolve into only one liquid particle if the fundamental cell length is small. If the threads break up in this case, they rupture from their ends only, i.e. the top and bottom surfaces of the fundamental cell, but not from their interiors. On the other hand, if the fundamental cell length is larger, more than one liquid particle may be produced in the cell and the liquid threads rupture not only from their ends but also from their interiors. It is also found that thinner liquid threads may produce more liquid particles in the cell and evaporate more quickly. In addition, more liquid particles are formed when the separation of the two threads is larger. Moreover, vaporization is slower when the two liquid threads are close to each other. On the basis of identical liquid thread radius and length, liquid threads that produce more liquid particles evaporate more quickly. Finally, the trends of Rayleigh's stability criterion and Kim's stability criterion agree with MD simulation results. However, when the two threads coalesce into a single thread and remain intact, the critical wavelength of perturbation may be increased and the stable domain is broadened. Under such a situation, Rayleigh's stability criterion and Kim's stability criterion underpredict the stable domain.
机译:先前对纳米级液体线的研究几乎全部致力于研究周期性基本单元中的单个液体线。本文是第一篇通过分子动力学(MD)模拟研究周期性基本单元中共存的两种纳米级液体线的汽化过程的方法。由于两条液体线之间的相互作用,汽化过程不同于周期性基本单元中单个液体线的汽化过程。这项研究讨论了液体螺纹半径,基本单元长度以及两条螺纹的相对位置的影响。分析了分子快照,形成的液体颗粒数量和密度场。为了获得它们在分子尺度上的有效性,使用了两个线性稳定性标准,即瑞利(Rayleigh)稳定性标准和金(Kim)稳定性标准。已经发现,如果基本泡孔长度较小,则两条液体线可以保持完整或仅演变为一个液体颗粒。如果在这种情况下螺纹破裂,则它们仅从其末端即基本单元的顶面和底面破裂,而不会从其内部破裂。另一方面,如果基本泡孔长度较大,则在泡孔中可能产生不止一个液体颗粒,并且液体线不仅从其端部而且从其内部破裂。还发现,较细的液体线可以在电池中产生更多的液体颗粒,并且蒸发得更快。另外,当两个线的间隔较大时,形成更多的液体颗粒。此外,当两个液体线彼此靠近时,汽化较慢。在相同的液体线半径和长度的基础上,产生更多液体颗粒的液体线蒸发得更快。最后,Rayleigh稳定性准则和Kim稳定性准则的趋势与MD仿真结果吻合。但是,当两条线合并为一条单线并保持完整时,扰动的临界波长可能会增加,并且稳定域会变宽。在这种情况下,Rayleigh的稳定性标准和Kim的稳定性标准会低估稳定域。

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