The Interfacial Thermodynamics of Micro Heat Pipes

Author:

Swanson L. W.1,Peterson G. P.2

Affiliation:

1. Heat Transfer Research, Inc., 1500 Research Parkway, College Station, TX 77840

2. Mechanical Engineering Department, Texas A&M University, College Station, TX 77843

Abstract

Successful analysis and modeling of micro heat pipes requires a complete understanding of the vapor–liquid interface. A thermodynamic model of the vapor–liquid interface in micro heat pipes has been formulated that includes axial pressure and temperature differences, changes in local interfacial curvature, Marangoni effects, and the disjoining pressure. Relationships were developed for the interfacial mass flux in an extended meniscus, the heat transfer rate in the intrinsic meniscus, the “thermocapillary” heat-pipe limitation, as well as the nonevaporating superheated liquid film thickness that exists between adjacent menisci and occurs during liquid dry out in the evaporator. These relationships can be used to define quantitative restrictions and/or requirements necessary for proper operation of micro heat pipes. They also provide fundamental insight into the critical mechanisms required for proper heat pipe operation.

Publisher

ASME International

Subject

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

Reference29 articles.

1. Adamson, A. W., 1990, Physical Chemistry of Surfaces, 5th ed., Wiley, Los Angeles, CA.

2. Ayyaswamy P. S. , CattonI., and EdwardsD. K., 1974, “Capillary Flow in Triangular Grooves,” ASME Journal of Applied Mechanics, Vol. 41, pp. 332–336.

3. Babin B. R. , PetersonG. P., and WuD., 1990, “Steady-State Modeling and Testing of a Micro Heat Pipe,” ASME JOURNAL OF HEAT TRANSFER, Vol. 112, pp. 595–601.

4. Brand, L., 1948, Vector and Tensor Analysis, Wiley, New York.

5. Carey, V. P., 1992, Liquid-Vapor Phase Change Phenomena, Hemisphere Publishing Corp., Washington, DC.

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