Browse > Article
http://dx.doi.org/10.3795/KSME-B.2002.26.11.1622

An Experimental Study on a Rectangular Parallelepiped Sodium Heat Pipe for High Temperature Class Forming  

Park, Soo-Yong (한국항공대학교 대학원)
Boo, Jun-Hong (한국항공대학교 항공우주 및 기계공학부)
Kim, Jun-Beom (삼성코닝 주식회사)
Publication Information
Transactions of the Korean Society of Mechanical Engineers B / v.26, no.11, 2002 , pp. 1622-1629 More about this Journal
Abstract
To enhance isothermal characteristics of glass-farming surface, a rectangular parallelepiped heat pipes was fabricated, tested, and analyzed. The working fluid was sodium and the wall material was stainless steel 304. The dimension of the heat pipe was 210 (L) $\times$ 140(W) $\times$ 92(H)mm. A lattice structure covered with screen mesh was inserted to promote return of working fluid. The bottom side of heat pipe was heated electrically and the top side was cooled by liquid circulation. The temperature distribution at the bottom surface was of major concern and was monitored to determine isothermal characteristics. A frozen start-up of rectangular parallelepiped liquid metal heat pipe was tested. The operating mode of the sodium heat pipe was affected by the temperature of cooling zone, input heat flux, and the operating temperature of heat pipe. The heat pipe operated in a normal fashion as long as the heat flux was over 5.78W/cm$^2$, and the inside wall temperature of condenser part was above 95$^{\circ}C$ The maximum temperature difference at the bottom surface was observed to be 32$^{\circ}C$ when the operating temperature of the heat pipe was operating normally around 50$0^{\circ}C$. The result showed that a sodium heat pipe was very effective in reducing significantly the temperature difference in the glass-forming surface.
Keywords
Liquid Metal; Startup Characteristic; Sodium Heat pipe; Rectangular Parallelepiped;
Citations & Related Records
Times Cited By KSCI : 3  (Citation Analysis)
연도 인용수 순위
1 Peterson, G. P, 1995, Introduction to Heat Pipes - Modeling, Testing and Applications, Wiley, pp. 334-345
2 Gorban et al., 1992, 'Method and Device for Making Glass Articles,' Application No. RU 92/00027
3 Samsonov et al., 1994, 'Device for Moulding Articles from Glass,' Application No. RU 94/00132
4 Choi, J. H., Kim, J. B., Whang, J. H., and Ha, D. S., 2000, 'An Effective Modeling for Mold Thermal Cycle Analysis in Repeated Forming Process of TV Glass,' Journal of KSME B, Vol. 24, no. 9, pp. 1219-1226   과학기술학회마을
5 Chi, S. W., 1976, Heat Pipe Theory and Practice :A Souce book, Hemisphere Publishing Corp., pp. 159-161
6 Juhasz, A. J. and Rovang ,R. D., 1995, 'Composite Heat Pipe Development Status: Development of Lightweight Prototype Carbon-Carbon Heat Pipe with Integral Fins and metal Foil Liner,' 9th IHPC, 15-06
7 Cao, Y. and Faghri, A. 1992, 'Closed-Form Analytical Solutions of High-Temperature Heat Pipe Startup and Frozen Startup Limitation,' J. of Heat Transfer, Vol. 114, pp. 1028-1035   DOI
8 Zhang, J. X., Chen, G. W., Hu, Z. Q., Mei, G. Z., and Zhao, R., 1997, 'Performance Test of high Temperature Heat Pipe Using Potassium-Sodium Alloy as Working Fluid,' 10th IHPC, I-2
9 Faghri, A., 1995, Heat Pipe Science and Technology, Taylor & Francis, pp. 19-24
10 Zhuang, J., Yang, J., Wang, R., Chen, X. Y., Li, J. X., and Li, L., 1995, 'Development of Liquid-Metal Heat Pipe Heat Exchanger,' 9th International Heat Pipe Conference, 7-17
11 Dunn, P. D. and Reay ,D. A., 1993, Heat Pipes, Pergamon, 4th edition, pp. 282-286
12 Faghri, A., Muchko, M., Cao, Y., 1991, 'A Study of high-Temperature Heat Pipes with Multiple Heat Souces and Sinks : Part Ⅰ- Analysis of Continuum Transient and Steady Sate Experimental Data with Numerical Predictions,' J. of Heat Transfer, Vol. 113, pp. 1010-1016   DOI
13 Laing, D., Reusch, M., and Brost, O., 1997, 'Hybrid Sodium Heat Pipe Receiver for Dish/Stirling System,' 10th IHPC , I-5, pp. 65-69   DOI
14 Faghri, A., Muchko, M., Cao, Y., 1991, 'A Study of high-Temperature Heat Pipes with Multiple Heat Sources and Sinks : Part Ⅱ - Analysis of Continuum Transient and Steady Sate Experimental Data with Numerical Predictions,' J. of Heat Transfer, Vol. 113, pp. 1010-1016   DOI
15 Ponnappan, R., Chang, W. S., 1994, 'Startup Performance of a Liquid-Metal Heat Pipe in Near-Vacuum and Gas-Loaded Modes,' J. Thermophysics and Heat Transfer, Vol. 8, No. 1, pp. 164-171   DOI   ScienceOn
16 Wo, C., Hu, H., Gu, W., 1995, 'Heat Transfer in a Two-phase Closed Thermosyphon with Solidification of High Temperature Phase-Change Medium,' 9th IHPC, pp. 102-109