Experimental data for void fraction and two-phase frictional pressure drop from various sources has been compiled and analyzed. The experimental data revealed that at lower range of superficial gas velocity and void fraction, the variations of two-phase frictional pressure drop with superficial gas velocity and void fraction are relatively flat. However, as superficial gas velocity and void fraction increase to higher values, the frictional pressure drop became significantly sensitive to the two parameters. In a situation when two-phase pressure drop is sensitive to the variation of void fraction, it is then that proper and accurate characterization of void fraction becomes significant. From the experimental data, regions where pressure drop is sensitive to the variation of void fraction are identified and evaluated.
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2012 20th International Conference on Nuclear Engineering and the ASME 2012 Power Conference
July 30–August 3, 2012
Anaheim, California, USA
Conference Sponsors:
- Nuclear Engineering Division
- Power Division
ISBN:
978-0-7918-4497-7
PROCEEDINGS PAPER
Effect of Void Fraction on Pressure Drop in Upward Vertical Two-Phase Gas-Liquid Pipe Flow
Clement C. Tang,
Clement C. Tang
University of North Dakota, Grand Forks, ND
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Sanjib Tiwari,
Sanjib Tiwari
University of North Dakota, Grand Forks, ND
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Afshin J. Ghajar
Afshin J. Ghajar
Oklahoma State University, Stillwater, OK
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Clement C. Tang
University of North Dakota, Grand Forks, ND
Sanjib Tiwari
University of North Dakota, Grand Forks, ND
Afshin J. Ghajar
Oklahoma State University, Stillwater, OK
Paper No:
ICONE20-POWER2012-55167, pp. 751-759; 9 pages
Published Online:
October 30, 2013
Citation
Tang, CC, Tiwari, S, & Ghajar, AJ. "Effect of Void Fraction on Pressure Drop in Upward Vertical Two-Phase Gas-Liquid Pipe Flow." Proceedings of the 2012 20th International Conference on Nuclear Engineering and the ASME 2012 Power Conference. Volume 3: Thermal-Hydraulics; Turbines, Generators, and Auxiliaries. Anaheim, California, USA. July 30–August 3, 2012. pp. 751-759. ASME. https://doi.org/10.1115/ICONE20-POWER2012-55167
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