The Heat Transport Capacity of Micro Heat Pipes

Author:

Ha J. M.1,Peterson G. P.1

Affiliation:

1. Department of Mechanical Engineering, Texas A&M University, College, TX 77843-3123

Abstract

The original analytical model for predicting the maximum heat transport capacity in micro heat pipes, as developed by Cotter, has been re-evaluated in light of the currently available experimental data. As is the case for most models, the original model assumed a fixed evaporator region and while it yields trends that are consistent with the experimental results, it significantly overpredicts the maximum heat transport capacity. In an effort to provide a more accurate predictive tool, a semi-empirical correlation has been developed. This modified model incorporates the effects of the temporal intrusion of the evaporating region into the adiabatic section of the heat pipe, which occurs as the heat pipe approaches dryout conditions. In so doing, the current model provides a more realistic picture of the actual physical situation. In addition to incorporating these effects, Cotter’s original expression for the liquid flow shape factor has been modified. These modifications are then incorporated into the original model and the results compared with the available experimental data. The results of this comparison indicate that the new semiempirical model significantly improves the correlation between the experimental and predicted results and more accurately represents the actual physical behavior of these devices.

Publisher

ASME International

Subject

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

Reference17 articles.

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

2. 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.

3. Chen, H., Groll, M., and Rosler, S., 1992, “Micro Heap Pipes: Experimental Investigation and Theoretical Modelling,” Proceedings the 8th International Heat Pipe Conference, Beijing, China.

4. Cotter, T. P., 1984, “Principles and Prospects of the Micro Heat Pipes,” Proceedings the 5th International Heat Pipe Conference, Tsukuba, Japan, pp. 328–335.

5. Gerner, F. M., Longtin, J. P., Henderson, H. T., Hsieh, W. M., Ramadas, P., and Chang, W. S., 1992, “Flow and Heat Transfer Limitations in Micro Heat Pipes,” ASME HTD-Vol. 206-3, ASME, New York, pp. 99–105.

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