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EFFECT OF INCLINATION ON POOL BOILING OF FC-72 DIELECTRIC LIQUID ON POROUS GRAPHITE

机译:倾斜度对多孔石墨上FC-72介电液体池沸腾的影响

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Saturation pool boiling experiments of FC-72 liquid on a flat, porous graphite and smooth copper surfaces measuring 10x10 mm investigated the effect of surface orientation on nucleate boiling and Critical Heat Flux (CHF). The inclination angle of the surface increased from 0° (upward-facing) to 60°, 90°, 120°, 150°, and 180° (downward facing). Results demonstrated significant increases in the nucleate boiling heat transfer coefficient and CHF on porous graphite, compared to those on copper. At low surface superheats, increasing the inclination angle increases the nucleate boiling heat transfer coefficient, which decreases with increased inclination angle at high surface superheats. These results and the measured decreases of CHF with increased inclination angle are consistent with those reported earlier by other investigators for dielectric and non-dielectric liquids. On smooth surfaces and micro-porous coatings, the reported fractional decreases in CHF with increased inclination angle are almost identical, but markedly larger than those measured in this work on porous graphite. On these surfaces the reported CHF in the downward-facing position (180° inclination) is ~10-20% of that in the upward-facing position (0° inclination), compared to ~53.3% on porous graphite. The CHF values of FC-72 liquid on porous graphite, which also decreased with increased inclination angle, are correlated using the general form suggested by Kutatelatze (1961) to within ±5% of the experimental data.
机译:FC-72液体在尺寸为10x10 mm的扁平多孔石墨和光滑铜表面上的饱和池沸腾实验研究了表面取向对成核沸腾和临界热通量(CHF)的影响。表面的倾斜角度从0°(朝上)增加到60°,90°,120°,150°和180°(朝下)。结果表明,与铜相比,多孔石墨上的核沸腾传热系数和CHF显着增加。在低表面过热度下,增加倾角会增加形核沸腾的传热系数,在高表面过热度下,成核沸腾的传热系数会减小。这些结果以及所测得的CHF随倾角增加而降低的情况,与其他研究人员先前针对介电液体和非介电液体报道的结果一致。在光滑的表面和微孔涂层上,所报告的CHF随倾斜角的增加而减少的比例几乎相同,但明显大于在多孔石墨上进行的这项工作中测得的分数。在这些表面上,所报告的CHF朝下位置(180°倾斜)的CHF约为朝上位置(0°倾斜)的CHF的10-20%,而多孔石墨的CHF约为53.3%。使用Kutatelatze(1961)提出的一般形式,将多孔石墨上的FC-72液体的CHF值也随倾斜角的增加而降低,与实验数据的±5%之内相关。

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