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Enhancement of melting heat transfer of ice slurries by an injection flow in a rectangular cross sectional horizontal duct

机译:通过矩形横截面水平导管中的注入流增强冰浆的融化传热

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摘要

Ice slurries are now commonly used as cold thermal storage materials, and have the potential to be applied to other engineering fields such as quenching metals to control properties, emergency cooling systems, and preservation of food and biomaterials at low temperatures. Although ice slurries have been widely utilized because of their high thermal storage densities, previous studies have revealed that the latent heat of ice particles is not completely released on melting because of insufficient contact between the ice particles and a heated surface. In this study, an injection flow that was bifurcated from the main flow of an ice slurry was employed to promote melting heat transfer of ice particles on a horizontal heated surface. The effects of injection angle and injection flow rate on local heat transfer coefficients and heat transfer coefficient ratios were determined experimentally. The results show that from two to three times higher heat transfer coefficients can be obtained by using large injection flow rates and injection angles. However, low injection angles improved the utilization rate of the latent heat of ice near the injection point by approximately a factor of two compared to that without injection. (C) 2013 Elsevier Ltd. All rights reserved.
机译:冰浆现在通常用作冷蓄热材料,并有潜力应用于其他工程领域,例如淬火金属以控制性能,紧急冷却系统以及在低温下保存食物和生物材料。尽管冰浆由于其高的储热密度而被广泛使用,但是先前的研究表明,由于冰颗粒与受热表面之间的接触不足,冰颗粒的潜热在熔化时不能完全释放。在这项研究中,从冰浆的主流分叉的注入流被用来促进冰颗粒在水平加热表面上的熔融传热。实验确定了喷射角度和喷射流量对局部传热系数和传热系数比的影响。结果表明,通过使用大的注入流量和注入角度,可以获得较高的传热系数的2至3倍。但是,低喷射角度与不喷射相比,将冰的潜热在喷射点附近的利用率提高了大约两倍。 (C)2013 Elsevier Ltd.保留所有权利。

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