Key Laboratory for Thermal Science and Power Engineering of Ministry of Education, Beijing Key Laboratory for CO2 Utilization and Reduction Technology, Department of Thermal Engineering and ‡Institute of Nuclear and New Energy Technology, Collaborative Innovation Center of Advanced Nuclear Energy Technology, Key Laboratory of Advanced Reactor Engineering and Safety of Ministry of Education, Tsinghua University , Beijing 100084, China.
Langmuir. 2016 Sep 13;32(36):9135-55. doi: 10.1021/acs.langmuir.6b02205. Epub 2016 Aug 30.
Numerical investigations of the dynamics and evaporative cooling of water droplets impinging onto heated surfaces can be used to identify spray cooling mechanisms. Droplet impingement dynamics and evaporation are simulated using the presented numerical model. Volume-of-fluid method is used in the model to track the free surface. The contact line dynamics was predicted from a dynamic contact angle model with the evaporation rate predicted by a kinetic theory model. A species transport equation was solved in the gas phase to describe the vapor convection and diffusion. The numerical model was validated by experimental data. The physical effects including the contact angle hysteresis and the thermocapillary effect are analyzed to offer guidance for future numerical models of droplet impingement cooling. The effects of various parameters including surface wettability, surface temperature, droplet velocity, droplet size, and droplet temperature were numerically studied from the standpoint of spray cooling. The numerical simulations offer profound analysis and deep insight into the spray cooling heat transfer mechanisms.
数值研究水滴撞击加热表面的动力学和蒸发冷却,可以用于识别喷雾冷却机制。使用所提出的数值模型模拟液滴撞击动力学和蒸发。该模型使用体积法来跟踪自由表面。通过具有蒸发速率的动力学理论模型的动态接触角模型来预测接触线动力学。通过求解气相中的物种输运方程来描述蒸汽对流和扩散。通过实验数据验证了数值模型。分析了包括接触角滞后和热毛细现象在内的物理效应,为液滴冲击冷却的未来数值模型提供了指导。从喷雾冷却的角度出发,数值研究了包括表面润湿性、表面温度、液滴速度、液滴尺寸和液滴温度在内的各种参数的影响。数值模拟为喷雾冷却传热机制提供了深入的分析和深刻的见解。