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Direct simulations of homogeneous bubble nucleation: Agreement with classical nucleation theory and no local hot spots

机译:均匀气泡成核的直接模拟:与经典成核理论一致且没有局部热点

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摘要

We present results from direct, large-scale molecular dynamics simulations of homogeneous bubble (liquid-to-vapor) nucleation. The simulations contain half a billion Lennard-Jones atoms and cover up to 56 million time steps. The unprecedented size of the simulated volumes allows us to resolve the nucleation and growth of many bubbles per run in simple direct micro-canonical simulations while the ambient pressure and temperature remain almost perfectly constant. We find bubble nucleation rates which are lower than in most of the previous, smaller simulations. It is widely believed that classical nucleation theory (CNT) generally underestimates bubble nucleation rates by very large factors. However, our measured rates are within two orders of magnitude of CNT predictions; only at very low temperatures does CNT underestimate the nucleation rate significantly. Introducing a small, positive Tolman length leads to very good agreement at all temperatures, as found in our recent vapor-to-liquid nucleation simulations. The critical bubbles sizes derived with the nucleation theorem agree well with the CNT predictions at all temperatures. Local hot spots reported in the literature are not seen: Regions where a bubble nucleation event will occur are not above the average temperature, and no correlation of temperature fluctuations with subsequent bubble formation is seen.
机译:我们目前的结果是直接,大规模分子动力学模拟的均匀气泡(液-汽)成核。模拟包含十亿个Lennard-Jones原子,涵盖多达5600万个时间步长。模拟体积的空前大小使我们能够在简单的直接微经典模拟中解决每次运行中许多气泡的形核和生长,而环境压力和温度几乎保持恒定不变。我们发现气泡成核率低于以前大多数较小的模拟。普遍认为经典成核理论(CNT)通常会通过很大的因素低估气泡成核速率。但是,我们测得的速率在CNT预测值的两个数量级内;仅在非常低的温度下,CNT才会大大低估成核速率。引入较小的正Tolman长度会导致在所有温度下都具有很好的一致性,这在我们最近的气液成核模拟中可以找到。用成核定理得出的临界气泡大小在所有温度下都与CNT预测非常吻合。没有看到文献中报道的局部热点:将发生气泡成核事件的区域不高于平均温度,并且未发现温度波动与随后的气泡形成的相关性。

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