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Simulation of the spreading of a gas-propelled micro-droplet upon impact on a dry surface using a lattice-Boltzmann approach

机译:使用格子Boltzmann方法模拟气体推动微滴在干燥表面上的扩散

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摘要

Spray cooling is one of the most promising methods of cooling high heat flux electronics. Depending on the type of the nozzle, spray cooling can be categorized as single phase or two phase. In the latter, which is known to be more effective, a secondary gas is used to further pressurize the liquid and form smaller droplets at higher velocities. The gas is also assumed to assist the spreading phase by imposing normal and tangential forces on the droplet free surface which adds to the complicated hydrodynamics of the droplet impact. Moreover, the order of magnitude of droplet size in spray cooling is 10¯⁶m thereby introducing a low Weber and Reynolds numbers impact regime which heretofore has not been well understood. A 3D lattice Boltzmann method was implemented to simulate the impact of a single micro-droplet on a dry surface in both ambient air and under a stagnation gas flow. Two cases were closely compared and correlations were proposed for the instantaneous spreading diameter. Contrary to recent findings at higher impact We and Re, it was found that stagnation flow only significantly affects the spreading phase for Ca*⩾0.35 but has little influence on the receding physics.
机译:喷雾冷却是冷却高热通量电子器件的最有前途的方法之一。根据喷嘴的类型,喷雾冷却可分为单相或两相。在后者中,已知是更有效的,辅助气体用于进一步加压液体并以较高的速度形成较小的液滴。还假定该气体通过在无液滴表面上施加法向和切向力来辅助扩散阶段,这增加了液滴冲击的复杂流体动力学。而且,喷雾冷却中液滴尺寸的数量级为10μm,从而引入了迄今为止尚未被很好理解的低韦伯和雷诺数冲击方案。实施了3D格子Boltzmann方法,以模拟单个微滴在环境空气中和停滞气流下对干燥表面的影响。仔细比较了两种情况,并提出了瞬时扩展直径的相关性。与最近对We和Re产生更大影响的发现相反,我们发现,滞流仅对Ca * 50.35的扩散阶段有显着影响,而对后退物理几乎没有影响。

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