This paper deals with the natural convective circulation thermosyphon with supercritical CO2 flow. New heat transport model aiming at supercritical thermosyphon heat transfer and stability is proposed and numerically studied. Two-dimensional rectangular natural circulation loop model is set up and the effect of pipe diameter is systematically analyzed. Finite volume method is used to solve the conservative equations with supercritical turbulence model incorporated. It is found that supercritical CO2 thermosyphon can achieve high Reynolds flow as 104–105 even temperature differences between source and sink is small. Stabilized flow is found for larger pipe diameter group due to the developed flow field and enhanced heat transfer. Heat transport at cooler side can be enhanced at higher operating temperature and be critical for the stabilization of the supercritical thermosyphon. Correlations of flow and heat transfer are reexamined and good agreements with classical reports are also obtained in the present study.
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December 2011
This article was originally published in
Journal of Heat Transfer
Research Papers
Simulation of Heat Transfer and System Behavior in a Supercritical CO2 Based Thermosyphon: Effect of Pipe Diameter
Lin Chen,
Lin Chen
Department of Energy and Resources Engineering,
College of Engineering, Peking University
, Beijing 100871, China
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Xin-Rong Zhang
Xin-Rong Zhang
Department of Energy and Resources Engineering, College of Engineering, Peking University, Beijing 100871, China; Energy Conversion Research Center, Department of Mechanical Engineering,
e-mail: zhxrduph@yahoo.com
Doshisha University
, Kyo-Tanabeshi, Kyoto 610-0321, Japan
Search for other works by this author on:
Lin Chen
Department of Energy and Resources Engineering,
College of Engineering, Peking University
, Beijing 100871, China
Xin-Rong Zhang
Department of Energy and Resources Engineering, College of Engineering, Peking University, Beijing 100871, China; Energy Conversion Research Center, Department of Mechanical Engineering,
Doshisha University
, Kyo-Tanabeshi, Kyoto 610-0321, Japan
e-mail: zhxrduph@yahoo.com
J. Heat Transfer. Dec 2011, 133(12): 122505 (8 pages)
Published Online: October 12, 2011
Article history
Received:
November 20, 2010
Revised:
June 11, 2011
Online:
October 12, 2011
Published:
October 12, 2011
Citation
Chen, L., and Zhang, X. (October 12, 2011). "Simulation of Heat Transfer and System Behavior in a Supercritical CO2 Based Thermosyphon: Effect of Pipe Diameter." ASME. J. Heat Transfer. December 2011; 133(12): 122505. https://doi.org/10.1115/1.4004434
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