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Fluctuating hydrodynamics for multiscale modeling and simulation: Energy and heat transfer in molecular fluids

机译:用于多尺度建模和仿真的波动流体力学:分子流体中的能量和热传递

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This work illustrates that fluctuating hydrodynamics (FHD) simulations can be used to capture the thermodynamic and hydrodynamic responses of molecular fluids at the nanoscale, including those associated with energy and heat transfer. Using all-atom molecular dynamics (MD) trajectories as the reference data, the atomistic coordinates of each snapshot are mapped onto mass, momentum, and energy density fields on Eulerian grids to generate a corresponding field trajectory. The molecular length-scale associated with finite molecule size is explicitly imposed during this coarse-graining by requiring that the variances of density fields scale inversely with the grid volume. From the fluctuations of field variables, the response functions and transport coefficients encoded in the all-atom MD trajectory are computed. By using the extracted fluid properties in FHD simulations, we show that the fluctuations and relaxation of hydrodynamic fields quantitatively match with those observed in the reference all-atom MD trajectory, hence establishing compatibility between the atomistic and field representations. We also show that inclusion of energy transfer in the FHD equations can more accurately capture the thermodynamic and hydrodynamic responses of molecular fluids. The results indicate that the proposed MD-to-FHD mapping with explicit consideration of finite molecule size provides a robust framework for coarse-graining the solution phase of complex molecular systems.
机译:这项工作说明波动流体力学(FHD)模拟可用于捕获纳米级分子流体的热力学和流体力学响应,包括那些与能量和热传递相关的响应。使用全原子分子动力学(MD)轨迹作为参考数据,将每个快照的原子坐标映射到欧拉网格上的质量,动量和能量密度场,以生成相应的场轨迹。通过要求密度场的方差与网格体积成反比,可以在粗粒度过程中明确施加与有限分子大小相关的分子长度尺度。从场变量的波动中,计算出全原子MD轨迹中编码的响应函数和传输系数。通过在FHD模拟中使用提取的流体属性,我们表明流体动力场的波动和弛豫与在参考全原子MD轨迹中观察到的波动定量地匹配,从而在原子表示和场表示之间建立了兼容性。我们还表明,在FHD方程中包含能量转移可以更准确地捕获分子流体的热力学和流体力学响应。结果表明,拟议的MD到FHD映射明确考虑了有限的分子大小,为复杂分子系统的溶液相粗粒度化提供了可靠的框架。

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