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Effects of Surface Conditions on Spray Cooling Characteristics

机译:表面条件对喷雾冷却特性的影响

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The influence of surface conditions such as scale thickness and surface roughness on water spray cooling and air jet cooling characteristics was investigated experimentally. SUS304 stainless steel with the thickness of 20 mm was used as the cooled sample. An artificial scale layer was formed on the sample surface by thermal-spraying using Al_(2)O_(3) powder. The thickness of the Al_(2)O_(3) layer was varied from 50 μ m to 210 μ m. A sample without an artificial scale layer was also studied; in this case, the surface was roughened by shot blasting up to 20 μ mRa.As a result, the artificial scale layer showed a thermal resistance function in both water spray cooling and air jet cooling. In water spray cooling, the characteristics of which depend on surface temperature, the cooling rate during film boiling and the apparent quenching temperature at the interface increased with Al_(2)O_(3) scale thickness. Surface roughness enhanced the cooling rate during film boiling and resulted in a higher quenching temperature in spray cooling. In air jet cooling, heat flux increases with surface roughness, but this tendency can be seen only with larger flow rates. Surface roughness has a much stronger influence on heat flux in water spray cooling, even though the average heat flux is not as large. In this research, the heat flux during impingement of water droplets was estimated to be much higher than that in air jet cooling. This is thought to explain the difference in the influence of surface roughness on cooling characteristics with the two cooling methods.
机译:实验研究了水垢厚度和表面粗糙度等表面条件对喷水冷却和空气喷射冷却特性的影响。厚度为20 mm的SUS304不锈钢用作冷却样品。通过使用Al_(2)O_(3)粉末进行热喷涂在样品表面上形成了人造鳞片层。 Al_(2)O_(3)层的厚度从50μm变化到210μm。还研究了没有人造鳞片层的样品。在这种情况下,通过喷砂处理使表面变粗糙至20μmRa。结果,人造水垢层在喷水冷却和喷气冷却中均表现出热阻功能。在水喷雾冷却中,其特性取决于表面温度,薄膜沸腾过程中的冷却速率和界面处的表观淬火温度随Al_(2)O_(3)氧化皮厚度的增加而增加。表面粗糙度提高了薄膜沸腾过程中的冷却速度,并导致了喷雾冷却中更高的淬火温度。在空气喷射冷却中,热通量随表面粗糙度而增加,但是这种趋势只有在较大的流量下才能看到。即使平均热通量不大,表面粗糙度对喷水冷却中的热通量也有更强的影响。在这项研究中,水滴撞击过程中的热通量估计要比喷气冷却中的热通量高得多。认为这可以解释两种冷却方法在表面粗糙度对冷却特性的影响上的差异。

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