首页> 外文期刊>American journal of physics >Beyond the Van Der Waals loop: What can be learned from simulating Lennard-Jones fluids inside the region of phase coexistence
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Beyond the Van Der Waals loop: What can be learned from simulating Lennard-Jones fluids inside the region of phase coexistence

机译:范德华循环之外:通过模拟相存区域内的Lennard-Jones流体可以学到什么

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As a rule, mean-field theories applied to a fluid that can undergo a transition from saturated vapor at density ρ υ to a liquid at density ρ ? yield a van der Waals loop. For example, isotherms of the chemical potential μ(T,ρ) as a function of the density ρ at a fixed temperature T less than the critical temperature T c exhibit a maximum and a minimum. Metastable and unstable parts of the van der Waals loop can be eliminated by the Maxwell construction. Van der Waals loops and the corresponding double minimum potentials are mean-field artifacts. Simulations at fixed μ=μ coex for ρ υ<ρ<ρ ? yield a loop, but for sufficiently large systems this loop does not resemble the van der Waals loop and reflects interfacial effects on phase coexistence due to finite size effects. In contrast to the van der Waals loop, all parts of the loop found in simulations are thermodynamically stable. The successive umbrella sampling algorithm is described as a convenient tool for seeing these effects. It is shown that the maximum of the loop is not the stability limit of a metastable vapor but signifies the droplet evaporation-condensation transition. The descending part of the loop contains information on Tolman-like corrections to the surface tension, rather than describing unstable states.
机译:通常,平均场理论应用于流体,该流体可以经历从密度为ρυ的饱和蒸气到密度为ρπ的液体的转变。产生范德华循环。例如,在小于临界温度T c的固定温度T下,化学势μ(T,ρ)的等温线与密度ρ的函数关系显示出最大值和最小值。麦克斯韦构造可消除范德华环的亚稳和不稳定部分。范德华循环和相应的两倍最小电势是均场伪像。在ρμ<ρ<ρ?产生一个回路,但是对于足够大的系统,该回路与范德华回路不相似,并且由于有限的尺寸效应而反映了相共存的界面效应。与范德华循环相反,模拟中发现的循环的所有部分都是热力学稳定的。连续伞状采样算法被描述为查看这些效果的便捷工具。已经表明,回路的最大值不是亚稳态蒸气的稳定性极限,而是表示液滴的蒸发-冷凝转变。循环的下降部分包含有关表面张力的类似托尔曼修正的信息,而不是描述不稳定状态。

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