冷媒R-134a对Cu─Al2O3复合涂层表面池沸腾传热的实验研究

IF 2.8 Q2 THERMODYNAMICS
Heat Transfer Pub Date : 2024-11-21 DOI:10.1002/htj.23235
Ajay D. Pingale, Govind Waghmare, Anil S. Katarkar, Sagar Wankhede, Swapan Bhaumik, Sachin Belgamwar
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引用次数: 0

摘要

本研究研究了R-134a在Cu─Al2O3复合涂层表面(CPSI、CPSII、CPSIII和CPSIV)上的池沸腾传热(phbht)。使用线切割方法,制造了四种不同类型的铜图案表面(PSI, PSII, PSIII和PSIV)。对比Cu─Al2O3复合涂层的图案化表面与未涂覆的Cu表面的换热系数(HTCs),发现Cu─Al2O3复合涂层图案化表面的换热系数显著提高。与裸Cu表面相比,CPSI、CPSII、CPSIII和CPSIV表面的HTC分别提高了162%、178%、189%和211%。这些结果表明,与裸铜表面相比,这些处理在增强传热方面的有效性。phbht的增强主要是由于多孔Cu─Al2O3复合涂层与图案表面的结合,导致更大的传热面积,改善了毛细作用,活性成核位点大幅增加。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental Investigation of Pool Boiling Heat Transfer on Cu─Al2O3 Composite Coated Patterned Surfaces Using Refrigerant R-134a

The present study investigates pool boiling heat transfer (PBHT) of R-134a on Cu─Al2O3 composite-coated patterned surfaces (CPSI, CPSII, CPSIII, and CPSIV). Using a wire EDM method, four different types of copper patterned surfaces (PSI, PSII, PSIII, and PSIV) were manufactured. Comparing the heat transfer coefficients (HTCs) of the Cu─Al2O3 composite-coated patterned surfaces to the uncoated Cu surfaces, a notable enhancement was observed. The maximum HTC improvements of 162%, 178%, 189%, and 211% were observed for CPSI, CPSII, CPSIII, and CPSIV, respectively, when compared with bare Cu surfaces. These results demonstrate the effectiveness of these treatments in enhancing heat transfer compared to bare copper surfaces. The enhancement in PBHT is mainly due to the integration of porous Cu─Al2O3 composite coating with patterned surfaces which resulted in a larger heat transfer area, improved capillary action, and a substantial increase in active nucleation sites.

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来源期刊
Heat Transfer
Heat Transfer THERMODYNAMICS-
CiteScore
6.30
自引率
19.40%
发文量
342
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