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首页> 外文期刊>The Journal of Chemical Physics >Fluctuating hydrodynamics for multiscale simulation of inhomogeneous fluids: Mapping all-atom molecular dynamics to capillary waves
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Fluctuating hydrodynamics for multiscale simulation of inhomogeneous fluids: Mapping all-atom molecular dynamics to capillary waves

机译:用于非均匀流体多尺度模拟的波动流体动力学:将全原子分子动力学映射到毛细管波

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摘要

We introduce a multiscale framework to simulate inhomogeneous fluids by coarse-graining an all-atom molecular dynamics (MD) trajectory onto sequential snapshots of hydrodynamic fields. We show that the field representation of an atomistic trajectory is quantitatively described by a dynamic field-theoretic model that couples hydrodynamic fluctuations with a Ginzburg-Landau free energy. For liquid-vapor interfaces of argon and water, the parameters of the field model can be adjusted to reproduce the bulk compressibility and surface tension calculated from the positions and forces of atoms in an MD simulation. These optimized parameters also enable the field model to reproduce the static and dynamic capillary wave spectra calculated from atomistic coordinates at the liquid-vapor interface. In addition, we show that a density-dependent gradient coefficient in the Ginzburg-Landau free energy enables bulk and interfacial fluctuations to be controlled separately. For water, this additional degree of freedom is necessary to capture both the bulk compressibility and surface tension emergent from the atomistic trajectory. The proposed multiscale framework illustrates that bottom-up coarse-graining and top-down phenomenology can be integrated with quantitative consistency to simulate the interfacial fluctuations in nanoscale transport processes.
机译:我们引入了一种多尺度框架,通过将全原子分子动力学(MD)轨迹粗粒度化为流体动力学场的连续快照,来模拟非均质流体。我们表明,通过动态场理论模型定量描述了原子轨迹的场表示,该模型将流体动力学波动与Ginzburg-Landau自由能耦合。对于氩和水的液-汽界面,可以调整现场模型的参数,以重现在MD模拟中从原子的位置和力计算出的整体可压缩性和表面张力。这些优化的参数还使现场模型能够重现从液-气界面处原子坐标计算出的静态和动态毛细管波谱。此外,我们表明,金茨堡-朗道自由能中的密度相关梯度系数可以使体积和界面波动分别得到控制。对于水,此额外的自由度对于捕获从原子轨迹出现的整体可压缩性和表面张力都是必需的。拟议的多尺度框架表明,可以将自下而上的粗粒度和自上而下的现象学与定量一致性相结合,以模拟纳米尺度传输过程中的界面波动。

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