Multiphase flow phenomena in single micro and minichannels have been widely studied. Characteristics of two-phase flow through a large array of microchannels are investigated here. An air–water mixture is used to represent the two phases flowing through a microchannel array representative of those employed in practical applications. Flow distribution of the air and water flow across 52 parallel microchannels of 0.4 mm hydraulic diameter is visually investigated using high-speed photography. Two microchannel configurations are studied and compared, with mixing features incorporated into the second configuration. Slug and annular flow regimes are observed in the channels. Void fractions and interfacial areas are calculated for each channel from these observations. The flow distribution is tracked at various lengths along the microchannel array sheets. Statistical distributions of void fraction and interfacial area along the microchannel array are measured. The design with mixing features yields improved flow distribution. Void fraction and interfacial area change along the length of the second configuration, indicating a change in fluid distribution among the channels. The void fraction and interfacial area results are used to predict the performance of different microchannel array configurations for heat and mass transfer applications. Results from this study can help inform the design of compact thermal-fluid energy systems.
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November 2018
Research-Article
Addressing Two-Phase Flow Maldistribution in Microchannel Heat and Mass Exchangers
Dhruv C. Hoysall,
Dhruv C. Hoysall
Mem. ASME
G.W. Woodruff School of
Mechanical Engineering,
Georgia Institute of Technology,
Atlanta, GA 30332
e-mail: dhoysall3@gatech.edu
G.W. Woodruff School of
Mechanical Engineering,
Georgia Institute of Technology,
Atlanta, GA 30332
e-mail: dhoysall3@gatech.edu
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Khoudor Keniar,
Khoudor Keniar
Mem. ASME
G.W. Woodruff School of
Mechanical Engineering,
Georgia Institute of Technology,
Atlanta, GA 30332
e-mail: kkeniar3@gatech.edu
G.W. Woodruff School of
Mechanical Engineering,
Georgia Institute of Technology,
Atlanta, GA 30332
e-mail: kkeniar3@gatech.edu
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Srinivas Garimella
Srinivas Garimella
Fellow ASME
G.W. Woodruff School of
Mechanical Engineering,
Georgia Institute of Technology,
Atlanta, GA 30332
e-mail: sgarimella@gatech.edu
G.W. Woodruff School of
Mechanical Engineering,
Georgia Institute of Technology,
Atlanta, GA 30332
e-mail: sgarimella@gatech.edu
Search for other works by this author on:
Dhruv C. Hoysall
Mem. ASME
G.W. Woodruff School of
Mechanical Engineering,
Georgia Institute of Technology,
Atlanta, GA 30332
e-mail: dhoysall3@gatech.edu
G.W. Woodruff School of
Mechanical Engineering,
Georgia Institute of Technology,
Atlanta, GA 30332
e-mail: dhoysall3@gatech.edu
Khoudor Keniar
Mem. ASME
G.W. Woodruff School of
Mechanical Engineering,
Georgia Institute of Technology,
Atlanta, GA 30332
e-mail: kkeniar3@gatech.edu
G.W. Woodruff School of
Mechanical Engineering,
Georgia Institute of Technology,
Atlanta, GA 30332
e-mail: kkeniar3@gatech.edu
Srinivas Garimella
Fellow ASME
G.W. Woodruff School of
Mechanical Engineering,
Georgia Institute of Technology,
Atlanta, GA 30332
e-mail: sgarimella@gatech.edu
G.W. Woodruff School of
Mechanical Engineering,
Georgia Institute of Technology,
Atlanta, GA 30332
e-mail: sgarimella@gatech.edu
1Corresponding author.
Contributed by the Heat Transfer Division of ASME for publication in the JOURNAL OF HEAT TRANSFER. Manuscript received October 17, 2017; final manuscript received June 21, 2018; published online July 23, 2018. Assoc. Editor: Guihua Tang.
J. Heat Transfer. Nov 2018, 140(11): 112402 (9 pages)
Published Online: July 23, 2018
Article history
Received:
October 17, 2017
Revised:
June 21, 2018
Citation
Hoysall, D. C., Keniar, K., and Garimella, S. (July 23, 2018). "Addressing Two-Phase Flow Maldistribution in Microchannel Heat and Mass Exchangers." ASME. J. Heat Transfer. November 2018; 140(11): 112402. https://doi.org/10.1115/1.4040706
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