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Cooling of porous metal surfaces by droplet impact

机译:液滴撞击冷却多孔金属表面

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An experimental study was conducted on the impact of droplets of pure water and n-heptane on impervious and porous (5 μm and 100 μm pore size) stainless steel surfaces. Surface porosity, roughness and thermal conductivity were measured. Droplet diameter (2.5 mm) and impact velocity (0.9 m/s) were kept constant while surface temperature was varied from room temperature to 300 ℃. Droplet impact was observed using a high-speed video camera. Droplet evaporation times were measured by recording the change in weight of the surface on which the droplet was deposited and surface temperature variation during droplet impact measured using a fast response surface thermocouple. Droplets spread out on porous surfaces during impact to form a thin film that was then drawn into pores by capillary forces. The rate of droplet spread decreased with greater surface roughness. The Leidenfrost temperature of n-heptane droplets increased with surface porosity while water droplets did not go into film boiling on the porous surfaces. A one-dimensional heat conduction model was used to estimate heat transfer coefficients between the impacting droplets and substrates. Heat transfer coefficients increased with surface temperature until sufficient vapor was generated at the liquid-solid interface to inhibit contact. Heat transfer coefficients then decreased with further increases in temperature.
机译:对纯水和正庚烷液滴对不透水和多孔(孔径分别为5μm和100μm)的表面进行了实验研究。测量了表面孔隙率,粗糙度和导热率。当表面温度从室温变化到300℃时,液滴直径(2.5 mm)和冲击速度(0.9 m / s)保持恒定。使用高速摄像机观察到液滴的冲击。通过记录液滴沉积表面的重量变化以及使用快速响应表面热电偶测量液滴撞击过程中的表面温度变化来测量液滴蒸发时间。液滴在撞击过程中会散布在多孔表面上,形成薄膜,然后通过毛细作用力拉成细孔。液滴散布的速率随着表面粗糙度的增加而降低。正庚烷液滴的莱顿弗罗斯特温度随表面孔隙率而增加,而水滴并未进入多孔表面的薄膜沸腾中。使用一维热传导模型来估计冲击液滴与基材之间的传热系数。传热系数随着表面温度的升高而增加,直到在液-固界面处产生足够的蒸汽以抑制接触为止。传热系数随温度的进一步升高而降低。

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