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DYNAMIC AND CONTROLLED TUNING OF THE BOILING CURVE DURING QUENCHING

机译:淬火过程中沸腾曲线的动态和可控调整

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Boiling influences many industrial processes like quenching, desalination and steam generation. Boiling heat transfer at high temperatures is limited by the formation of a vapor layer between the solid and fluid. Low thermal conductivity of this vapor layer inhibits heat transfer. Electrowetting (EW) fields can breakdown this vapor layer to promote wetting, and this concept works for many quenching media including water and organic solvents. This work studies the suppression of this vapor layer and measures the resulting heat transfer enhancement during quenching of metals. We image the fluid-surface interactions and boiling patterns in the presence of an electrical voltage. EW fields replace film boiling with periodic wetting-rewetting cycles and thus fundamentally change the heat transfer mode. The increased wettability substantially reduces the cool down time. The cooling rate can by increased by as much as 3X. The results show that electric fields can dynamically tune the classical quenching curve. This study opens up new avenues to control the metallurgy of metals via electrical control of the cooling rate.
机译:沸腾影响许多工业过程,例如淬火,脱盐和产生蒸汽。高温下的沸腾传热受固体和流体之间形成蒸汽层的限制。该蒸气层的低导热率抑制了热传递。电润湿(EW)场可破坏该蒸汽层以促进润湿,并且该概念适用于许多淬灭介质,包括水和有机溶剂。这项工作研究了该蒸汽层的抑制作用,并测量了金属淬火过程中所产生的传热增强。在存在电压的情况下,我们对流体-表面相互作用和沸腾模式进行了成像。 EW场通过定期的润湿-再润湿循环来代替薄膜沸腾,从而从根本上改变了传热模式。润湿性的提高大大减少了冷却时间。冷却速度最多可以提高3倍。结果表明,电场可以动态调节经典的淬灭曲线。这项研究开辟了通过冷却速度的电气控制来控制金属冶金的新途径。

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