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Stress and heat flux for arbitrary multibody potentials: A unified framework

机译:任意多体势的应力和热通量:一个统一的框架

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摘要

A two-step unified framework for the evaluation of continuum field expressions from molecular simulations for arbitrary interatomic potentials is presented. First, pointwise continuum fields are obtained using a generalization of the Irving-Kirkwood procedure to arbitrary multibody potentials. Two ambiguities associated with the original Irving-Kirkwood procedure (which was limited to pair potential interactions) are addressed in its generalization. The first ambiguity is due to the nonuniqueness of the decomposition of the force on an atom as a sum of central forces, which is a result of the nonuniqueness of the potential energy representation in terms of distances between the particles. This is in turn related to the shape space of the system. The second ambiguity is due to the nonuniqueness of the energy decomposition between particles. The latter can be completely avoided through an alternate derivation for the energy balance. It is found that the expressions for the specific internal energy and the heat flux obtained through the alternate derivation are quite different from the original Irving-Kirkwood procedure and appear to be more physically reasonable. Next, in the second step of the unified framework, spatial averaging is applied to the pointwise field to obtain the corresponding macroscopic quantities. These lead to expressions suitable for computation in molecular dynamics simulations. It is shown that the important commonly-used microscopic definitions for the stress tensor and heat flux vector are recovered in this process as special cases (generalized to arbitrary multibody potentials). Several numerical experiments are conducted to compare the new expression for the specific internal energy with the original one.
机译:提出了一个两步统一的框架,用于评估分子模拟中任意原子间电势的连续场表达式。首先,使用Irving-Kirkwood过程将其推广到任意多体势,获得逐点连续谱场。在其概括中解决了与原始Irving-Kirkwood过程相关的两个歧义(仅限于配对潜在相互作用)。第一个歧义是由于作为中心力之和的原子上的力分解的不唯一性,这是势能表示形式相对于粒子之间的距离不唯一的结果。这又与系统的形状空间有关。第二个歧义是由于粒子之间能量分解的不唯一性。通过交替导出能量平衡可以完全避免后者。发现通过交替推导获得的比内能和热通量的表达式与原始的Irving-Kirkwood过程完全不同,并且似乎在物理上更合理。接下来,在统一框架的第二步中,将空间平均应用于逐点字段以获得相应的宏观量。这些导致适合于分子动力学模拟计算的表达式。结果表明,在特殊情况下,应力张量和热通量矢量的重要微观定义已得到恢复(一般化为任意多体势)。进行了一些数值实验,以将新的单位内部能量表达式与原始表达式进行比较。

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