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Research Article

Thermal performance analysis of reflux condensation in vertical tubes via pure steam

Samah A. Albdour1,2Sameer Osman1,2Mubashir Hassan1,2Ho Joon Yoon3Imran Afgan1,2,4Yacine Addad1,2( )
Department of Mechanical and Nuclear Engineering, Khalifa University, Abu Dhabi 127788, United Arab Emirates
Emirates Nuclear Technology Center, Khalifa University of Science and Technology, Abu Dhabi 127788, United Arab Emirates
Federal Authority for Nuclear Regulation, Abu Dhabi 112021, United Arab Emirates
Department of Mechanical and Aerospace Engineering, School of Engineering, University of Manchester, Manchester M13 9PL, UK
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An erratum to this article is available online at:

Abstract

Reflux condensation in the U-tubes of a steam generator (SG) plays a vital role in removing heat in pressurized water reactors (PWRs) during mid-loop operations and/or accidents. To evaluate the efficacy of reflux condensation in SG U-tubes, a comprehensive understanding of the heat transfer characteristics associated with pure steam is necessary. Therefore, this study performs experiments to examine the reflux condensation of pure steam within a vertical tube with an inner diameter of 19 mm and an outer diameter of 22 mm. The steam bulk temperatures were systematically altered at 10-degree intervals within the range of 120–150 °C, and the steam Reynolds number ranged from 4876 to 20,430. Throughout, the temperature of the coolant within the cooling jacket and its rate of flow remained constant at 55 °C and 8 L/min, respectively. Validation via the TRACE system code confirmed good agreement with the experimental results, further bolstering confidence in the consistency of the current findings with the data previously used to calibrate and refine the correlations within the system code.

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Experimental and Computational Multiphase Flow
Pages 121-132

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Cite this article:
Albdour SA, Osman S, Hassan M, et al. Thermal performance analysis of reflux condensation in vertical tubes via pure steam. Experimental and Computational Multiphase Flow, 2025, 7(1): 121-132. https://doi.org/10.1007/s42757-024-0234-x

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Received: 22 May 2024
Revised: 20 October 2024
Accepted: 06 November 2024
Published: 06 March 2025
© Tsinghua University Press 2025