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Numerical simulation of droplet evaporation on a hot surface near Leidenfrost regime using multiphase lattice Boltzmann method

机译:使用多相晶格Boltzmann方法对莱顿弗罗斯特政权附近的液滴蒸发的数值模拟

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In the present article, evaporation of a liquid drop spreading on hot surface, based on the lattice Boltzmann method, is simulated. Liquid and gas phases are considered to be incompressible. The divergence-free condition of the velocity field is no longer satisfied since the phase change occurs at the interface. In order to take into account the vaporization effects, the convective Cahn-Hilliard equation is extended. The phase change process is modeled by employing a proper source term at the interface. The D2Q9 structure is used in the present simulation. Effects of different non-dimensional parameters including the Bond number, liquid Archimedes number, gas Stefan number, density ratio, and the Prandtl number on behavior of liquid drop are investigated. Computational results showed that increasing the Bond number, liquid Archimedes number and density ratio accelerates the evaporation rate. The Leidenfrost regime is observed in high Stefan numbers, while in low Stefan numbers, the drop is attached to the heated wall. Furthermore, decreasing the equilibrium contact angle leads to the lagging of the Leidenfrost regime. (C) 2017 Elsevier Inc. All rights reserved.
机译:在本文中,模拟了基于晶格Boltzmann方法的热表面上的液滴扩展的蒸发。液体和气体相被认为是不可压缩的。由于在界面处发生相位变化,因此不再满足速度场的无分离条件。为了考虑到蒸发效果,对流Cahn-Hilliard方程延长。通过在接口处采用适当的源术语来建模相变过程。 D2Q9结构用于本仿真中。研究了不同非尺寸参数,包括键合数,液体射频数,气体斯特凡序数,密度比和液滴行为的PRANDTL数。计算结果表明,增加粘合数,液体轴承数和密度比加速蒸发速率。在高斯特凡号的情况下观察到leidenfrost制度,而在低斯特凡号的同时,下降连接到加热的壁上。此外,降低平衡接触角导致界面弗洛斯特政权的滞后。 (c)2017年Elsevier Inc.保留所有权利。

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