不同介质在微结构表面过冷条件下的流动沸腾研究

IF 1.7 4区 工程技术 Q3 MECHANICS Heat and Mass Transfer Pub Date : 2023-12-11 DOI:10.1007/s00231-023-03445-w
Bifeng Yin, Ying Zhang, Shuangyu Yang, Fei Dong, Xuan Xie, Peng Zhang
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引用次数: 0

摘要

以往的研究表明,改变表面结构可以增强传热效果。在这项研究中,我们为一个流体力学直径为 10 毫米的长方形通道设计了一个具有均匀结构的正方形微柱阵列。研究使用去离子水和 HFE-7100 作为工作流体。讨论了流速和过冷度对流动沸腾传热性能的影响。通过可视化实验比较了两种不同介质的气泡行为。结果表明,方形微柱阵列会通过增加传热面积和干扰主流体来延迟ONB点,并将整体沸腾传热性能提高2-3倍。实验发现,HFE-7100 在低热流密度下沸腾效果更好,但其稳定核沸腾时间较短。此外,在沸腾过程的不同阶段,体积流量和过冷度对传热性能的影响也大不相同。在 ONB 点之前,体积流量的增加会使热流密度增加 88.9%,并降低沸腾传热的稳定性。在 ONB 点之后,流体流量对沸腾过程的影响减弱。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Study on the flow boiling of different media under supercooled conditions on surfaces with microstructures

Previous studies have demonstrated that altering the surface structure can enhance heat transfer. In this study, a square micropillar array with a homogeneous structure was designed for a long rectangular channel with a hydrodynamic diameter of 10 mm. Deionized water and HFE-7100 were used as working fluids for the study. The effect of flow rate and subcooling degree on flow boiling heat transfer performance is discussed. The bubble behavior of two different media was compared by visualization experiments. The results show that the square microcolumn array will delay the ONB point by increasing the heat transfer area and disturbing the main fluid, and improve the overall boiling heat transfer performance by 2–3 times. It was found that HFE-7100 boils better under low heat flow density, but its stable nuclear boiling time is shorter. Furthermore, the effects of volume flow and subcooling on heat transfer performance vary significantly at different stages of the boiling process. Before the ONB point, an increase in volume flow will increase the heat current density by 88.9% and reduce the boiling heat transfer stability. After the ONB point, the effect of fluid flow on the boiling process weakens.

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来源期刊
Heat and Mass Transfer
Heat and Mass Transfer 工程技术-力学
CiteScore
4.80
自引率
4.50%
发文量
148
审稿时长
8.0 months
期刊介绍: This journal serves the circulation of new developments in the field of basic research of heat and mass transfer phenomena, as well as related material properties and their measurements. Thereby applications to engineering problems are promoted. The journal is the traditional "Wärme- und Stoffübertragung" which was changed to "Heat and Mass Transfer" back in 1995.
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