Numerical investigation on wetting behavior and heat transfer characteristics of film flow on the smooth and orthogonal wave plates

Z. Wan, Yanzhong Li
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Abstract

Three-dimensional gravity-driven film flowing on a smooth plate and three orthogonal wave plates are studied numerically by using the Finite Volume Method in this paper. The volume of fluid (VOF) model is applied to simulate the gas-liquid interface. The existing experimental data of water film flowing down the inclined smooth plate are employed to verify the reliability of the numerical implementation. Results obtained indicate that different fluids have different wetting characteristics even at the same Reynolds number. The wetting area on the orthogonal wave plates is less than that of the smooth plate at $\mathbf{Re}\geq 163$, especially for wave plates with higher wave depth. The influence of the plate wave depth is more noteworthy than that of the plate wavelength. For the wave plates, the wetting ratio decreases with the growing of inclination angles, but the effect can be neglect when Re is larger than 300. The local heat transfer coefficients of the smooth plate drop along the flow length, and the wave plate can enhance the heat transfer performance at a certain range of depth-length ratio (Rt).
光滑波板和正交波板上膜流润湿行为和换热特性的数值研究
本文采用有限体积法对三维重力驱动膜在光滑板和三个正交波板上的流动进行了数值研究。采用流体体积(VOF)模型模拟气液界面。利用已有的水膜沿倾斜光滑板向下流动的实验数据,验证了数值实现的可靠性。结果表明,在相同雷诺数下,不同流体的润湿特性不同。在$\mathbf{Re}\geq 163$处,正交波片的润湿面积小于光滑波片,特别是对于波深较高的波片。平板波深的影响比平板波长的影响更值得注意。对于波板,润湿率随倾角的增大而减小,但当Re大于300时,润湿率的影响可以忽略不计。光滑板的局部换热系数沿流长减小,波板在一定的深长比(Rt)范围内可以增强换热性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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