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Infrared thermometry study of nanofluid pool boiling phenomena

机译:纳米流体池沸腾现象的红外测温研究

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摘要

Infrared thermometry was used to obtain first-of-a-kind, time- and space-resolved data for pool boiling phenomena in water-based nanofluids with diamond and silica nanoparticles at low concentration (<0.1 vol.%). In addition to macroscopic parameters like the average heat transfer coefficient and critical heat flux [CHF] value, more fundamental parameters such as the bubble departure diameter and frequency, growth and wait times, and nucleation site density [NSD] were directly measured for a thin, resistively heated, indium-tin-oxide surface deposited onto a sapphire substrate. Consistent with other nanofluid studies, the nanoparticles caused deterioration in the nucleate boiling heat transfer (by as much as 50%) and an increase in the CHF (by as much as 100%). The bubble departure frequency and NSD were found to be lower in nanofluids compared with water for the same wall superheat. Furthermore, it was found that a porous layer of nanoparticles built up on the heater surface during nucleate boiling, which improved surface wettability compared with the water-boiled surfaces. Using the prevalent nucleate boiling models, it was possible to correlate this improved surface wettability to the experimentally observed reductions in the bubble departure frequency, NSD, and ultimately to the deterioration in the nucleate boiling heat transfer and the CHF enhancement.
机译:红外测温法用于获得低浓度金刚石和二氧化硅纳米颗粒(<0.1%(体积))的水基纳米流体中池沸腾现象的首创,时间和空间分辨数据。除了平均传热系数和临界热通量[CHF]值等宏观参数外,还直接测量了较薄的基本参数,如气泡离开直径和频率,生长和等待时间以及成核点密度[NSD]。电阻加热的氧化铟锡表面沉积在蓝宝石衬底上。与其他纳米流体研究一致,纳米颗粒导致了核沸腾传热的恶化(多达50%)和CHF的增加(多达100%)。在相同的壁过热情况下,发现纳米流体中的气泡离开频率和NSD低于水。此外,发现在成核沸腾期间在加热器表面上堆积的纳米颗粒的多孔层与水沸腾的表面相比提高了表面的可湿性。使用普遍的核沸腾模型,可以将这种改善的表面润湿性与实验观察到的气泡离开频率NSD的降低相关,并最终与核沸腾传热和CHF增强的恶化相关联。

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