An Experimental Study on the Effect of Gravitational Orientation on Flow Boiling of Water in 1054×197μm Parallel Minichannels

Author:

Kandlikar Satish G.1,Balasubramanian Prabhu1

Affiliation:

1. Thermal Analysis and Microfluidics Laboratory, Mechanical Engineering Department, Rochester Institute of Technology, Rochester, New York 14623, USA

Abstract

Microchannels and minichannels are being considered for high heat flux applications under microgravity environment in space missions. An experimental study is undertaken to determine the effect of gravitational orientation on flow boiling characteristics of water in a set of six parallel minichannels, each 1054μm wide by 197μm deep and 63.5mm long with a hydraulic diameter of 333μm. Three orientations—horizontal, vertical downflow, and vertical upflow—are investigated under identical operating conditions of heat and mass fluxes. High-speed images are obtained to reveal the detailed two-phase flow structure and liquid-vapor interactions. The experimental data and high speed flow visualization indicate that compared to the horizontal case, the flow becomes less chaotic for the vertical upflow case, while the reversed flow becomes more pronounced in the vertical downflow case. The resulting increase in the backflow is responsible for channel-to-channel flow maldistribution and heat transfer degradation. From the heat transfer data it is concluded that the performance of the tested channels in a microgravity environment will be similar to the horizontal flow case.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

Reference13 articles.

1. Kandlikar, S. G., Steinke, M. E., Tian, S., and Campbell, L., 2001, “High-Speed Photographic Observation of Flow Boiling of Water in Parallel Mini-channels,” ASME National Heat Transfer Conference, paper no. NHTC01-11262, Los Angeles, CA.

2. Gas-Liquid Two-Phase Flow in Microchannels Part II: Void Fraction and Pressure Drop;Triplett;Int. J. Multiphase Flow

3. Heat Transfer Mechanisms During Flow Boiling in Microchannels;Kandlikar;ASME J. Heat Transfer

4. Flow Patterns and Pressure Drop in Isothermal Gas-Liquid Flow in a Horizontal Capillary Tube;Fukano

5. Boiling Heat Transfer in a Small Diameter Tube;Wambsganss;ASME J. Heat Transfer

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