Investigation of a Novel Flat Heat Pipe

Author:

Wang Yaxiong1,Peterson G. P.2

Affiliation:

1. Foxconn Thermal Technology, Austin, TX 78758

2. Department of Mechanical, Aerospace and Nuclear Engineering, Rensselaer Polytechnic Institute, Troy, NY 12180

Abstract

A novel flat heat pipe has been developed to assist in meeting the high thermal design requirements in high power microelectronics, power converting systems, laptop computers and spacecraft thermal control systems. Two different prototypes, each measuring 152.4 mm by 25.4 mm were constructed and evaluated experimentally. Sintered copper screen mesh was used as the primary wicking structure, in conjunction with a series of parallel wires, which formed liquid arteries. Water was selected as the working fluid. Both experimental and analytical investigations were conducted to examine the maximum heat transport capacity and optimize the design parameters of this particular design. The experimental results indicated that the maximum heat transport capacity and heat flux for Prototype 1, which utilized four layers of 100 mesh screen were 112 W and 17.4W/cm2, respectively, in the horizontal position. For Prototype 2, which utilized six layers of 150 mesh screen, these values were 123 W and 19.1W/cm2, respectively. The experimental results were in good agreement with the theoretical predictions for a mesh compact coefficient of C=1.15.

Publisher

ASME International

Subject

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

Reference16 articles.

1. Plesch, D., Bier, W., Seidel, D., and Schubert, K., 1991, “Miniature Heat Pipes for Heat Removal from Microelectronic Circuits,” Proceedings of ASME Annual Meeting, Atlanta, GA.

2. Hopkins, R., Faghri, A., and Khrustalev, D., 1999, “Flat Miniature Heat Pipes With Micro Capillary Grooves,” ASME J. Heat Transfer, 121, pp. 102–109.

3. Peterson, G. P., Duncan, A. B., and Weichold, M. H., 1993, “Experimental Investigation of Micro Heat Pipe Fabricated in Silicon Wafers,” ASME J. Heat Transfer, 11, pp. 751–756.

4. Peterson, G. P., 1994, An Introduction to Heat Pipes—Modeling, Testing, and Applications, John Wiley & Sons Inc., New York.

5. Faghri, A., Heat Pipe Science and Technology, Taylor & Francis, PA, 1995, pp. 240–245.

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