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Boiling heat transfer during single nanofluid drop impacts onto a hot wall

机译:单个纳米流体液滴撞击过程中的沸腾传热撞击热壁

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摘要

Experiments were carried out to explore boiling heat transfer during successive impacts of single nanofluid drops onto a hot stainless steel plate. Nucleate boiling heat transfer and critical heat flux were improved significantly when nanometer-sized titanium-dioxide particles were dispersed in water drops. In contrast, colloidal dispersion of the nanoparticles degraded the heat transfer when the plate temperature was too high. A thin nanoparticle layer was formed on the plate during the nucleate boiling of nanofluid drops to improve the surface wettability. Observation of the impact process revealed that droplet spreading area at low plate temperatures was wider for the nanofluid drops. An increase in the liquid-solid contact area was expected to be a primary cause of the nucleate boiling heat transfer improvement. At high plate temperatures, phase change caused immediately after the drop impact appeared more significant for the nanofluid drops. It was considered that the significant vaporization in the initial stage inhibited the liquid-solid contact in the later stage to degrade the overall heat transfer.
机译:进行实验以探索在单个纳米流体液滴连续撞击到热不锈钢板上的过程中的沸腾传热。当纳米尺寸的二氧化钛颗粒分散在水滴中时,核沸腾传热和临界热通量得到显着改善。相反,当板温度太高时,纳米颗粒的胶体分散降低了热传递。在纳米流体液滴的成核沸腾过程中,板上形成了一层薄的纳米颗粒层,以改善表面的可湿性。观察碰撞过程表明,在低平板温度下,液滴的扩散面积对于纳米流体液滴而言较宽。液固接触面积的增加被认为是成核沸腾传热改善的主要原因。在高板温下,对于纳米流体液滴,在液滴撞击后立即引起的相变显得更为明显。可以认为,在初期阶段的大量汽化抑制了后期阶段的液-固接触,从而降低了整体传热。

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