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직관 마이크로채널 PCHE의 열전달특성 및 압력강하

Heat Transfer Characteristics and Pressure Drop in Straight Microchannel of the Printed Circuit Heat Exchangers

  • 발행 : 2008.12.01

초록

The performance experiments for a microchannel printed circuit heat exchanger (PCHE) of high-performance and high-efficiency on the two technologies of micro photo-etching and diffusion bonding were performed in this study. The microchannel PCHE were experimentally investigated for Reynolds number in ranges of 100 $\sim$ 700 under various flow conditions in the hot side and the cold side. The inlet temperatures of the hot side were conducted in range of $40^{\circ}C\;{\sim}\;50^{\circ}C$ while that of the cold-side were fixed at $20^{\circ}C$. In the flow pattern, the counter flow was provided 6.8% and 10 $\sim$ 15% higher average heat transfer rate and heat transfer performance than the parallel flow, respectively. The average heat transfer rate, heat transfer performance and pressure drop increases with increasing Reynolds number in all the experiment. The increasing of inlet temperature in the experiment range has not an effect on the heat transfer performance while the pressure drop decrease slightly with that of inlet temperature. The experimental correlations to the heat transfer coefficient and pressure drop factor as a function of the Reynolds number have been suggested for the microchannel PCHE.

키워드

참고문헌

  1. Johnston, A.M., Levy, W. and Rumbold, S.O., "Application of PCHE Technology Within Hetrogeneous Catalytic Reactors," AIChE Annual Meeting 2001
  2. Gromoll, B., 1998, "Micro Cooling Systems for High Density Packaging," Revue Generale de Thermique, Vol. 37, No. 9, pp. 781-787 https://doi.org/10.1016/S0035-3159(98)80004-4
  3. Rachkovskij, D. A., Kussul, E. M. and Talayev, S. A., 1998, "Heat Exchange in Short Microtubes and Micro Heat Exchangers with Low Hydraulic Losses," Microsystem Technologies, Vol. 4, No. 3, pp. 151-158 https://doi.org/10.1007/s005420050120
  4. Kang, S. W. and Tseng, S. C., 2007, "Analysis of Effectiveness and Pressure Drop in Micro Cross-Flow Heat Exchanger," Applied Thermal Engineering, Vol. 27, No. 5-6, pp. 877-885 https://doi.org/10.1016/j.applthermaleng.2006.09.002
  5. Nikitin, K., Kato, Y. and Ngo, L., 2006, "Printed Circuit Heat Exchanger Thermal-Hydraulic Performance in Supercritical $CO_2$ Experimental Loop," International Journal of Refrigeration, Vol. 29, No. 5, pp. 807-814 https://doi.org/10.1016/j.ijrefrig.2005.11.005
  6. Ngo, L., Katoa, Y., Nikitina, K. and Tsuzukia, N., 2006, "New Printed Circuit Heat Exchanger with S-shaped Fins for Hot Water Supplier," Experimental Thermal and Fluid Science, Vol. 30, No. 8, pp. 811-819 https://doi.org/10.1016/j.expthermflusci.2006.03.010
  7. Tsuzuki, N., Kato, Y. and Ishizuka, T., 2007, "High Performance Printed Circuit Heat Exchanger," Applied Thermal Engineering, Vol. 30, No. 10, pp. 1702-1707 https://doi.org/10.1016/j.applthermaleng.2006.07.007
  8. Cowell, T.A., 1990, "A General Method for the Comparison of Compact Heat Transfer Surfaces," Transactions of the ASME, Vol. 112, pp. 288-294 https://doi.org/10.1115/1.2910374
  9. Shah, R. K., 1990, "Assessment of Modified wilson Plot Techniques for Obtaining Heat Exchanger Design Data," Heat Transfer 1990, G. Hetsroni, ed., Hemisphere, New York, pp. 51-56
  10. Kays, W. M. and London, A. L., 1964, Compact Heat Exchangers, 2nd Ed. McGraw-Hill, New York
  11. ASME PTC 19.1, 1998
  12. NIST Technical Note 1297, 1994
  13. Wilson, E.E., 1915, "A Basis for Rational Design of Heat Transfer Apparatus," ASME Transactions, Vol. 37, pp. 47-82
  14. Manglik, R. M. and Bergles, A. E., 1991, "Heat Transfer Enhancement of Intube Flows in Process Heat Exchangers by Means of Twisted-Tape Inserts," Report No. HTL-18, Heat Transfer Laboratory, Rensselaer Polytechnic Institute, Troy, NY

피인용 문헌

  1. An Experimental Study on the Evaporative Heat Transfer Characteristics of R-134a in a Micro-Channel Heat Exchanger vol.34, pp.2, 2010, https://doi.org/10.3795/KSME-B.2010.34.2.113