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Performance and flow distribution of the plate heat exchanger with supercritical fluid of carbon dioxide

Year 2015, Volume: 1 Issue: 3, 143 - 151, 01.03.2015
https://doi.org/10.18186/jte.21471

Abstract

The present study proposes a plate heat exchanger model that is capable of simulating the supercritical fluids like CO2. The plate heat exchanger is of U-type configuration, and the size of the plate is 600 mm wide and 218 mm in height. Simulations are carried out for both isothermal and nonisothermal cases with water-to-water and water-to-CO2 plate heat exchanger. The proposed model was first compared with some existing water-to-water plate heat exchanger data. Generally, the predicted water flow distributions are in line with the experimental data. Yet the simulation results of temperature distribution alongside the plate agree excellently with other predicted model. For the water side distribution within the plate heat exchanger, it is found that a detectable mal-distribution prevails and the flowrate shows a consistent decline from the first to the last plate. Basically, a larger mal-distribution is seen when the inlet flowrate is increased or when the plate number is increased. The simulation indicates that the inlet temperature of water casts negligible influence on the water flowrate distribution. By contrast, it is found that the inlet temperature difference for the CO2 side may raise significant changes of thermodynamics andtransport property of CO2, and result in a great difference in flow distribution. Generally the maldistribution of the CO2 is much less severe due to more even pressure difference between the intake and exhaust manifold. The effect of pressure on heating capacity for the water-CO2

References

  • Han, W., Saled, K., Aute, V., Ding, G., Hwang, Y., Radermacher, R., “Numerical simulation and optimization of single-phase turbulent flow in chevron-type plate heat exchanger with sinusoidal corrugations,” HVAC&R Research, 17(2), pp. 186- 197, (2011).
  • Hashimoto K., “Technology and market development of CO2 heat pump water heaters (ECO CUTE) in Japan,” IEA Heat Pump Centre Newsletter, 12-16 (2006).
  • ASHRAE Handbook, Refrigeration (2010). ASHRAE, Atlanta, GA.
  • Lorentzen, G., Pettersen J., “A new, efficient and ambientally benign system for car air conditioning,” Int. J. Refrigeration, 16, pp. 4-12 (1993).
  • Lorentzen, G., “Revival of carbon dioxide as a refrigerant,” Int. J. Refrigeration, 17, pp. 292-300, (1994). Lorentzen, G., “The use of natural refrigerant: a complete solution to the CFC/HCFC predicament,” Int. J. Refrigeration, 18, pp. 190-197, (1994).
  • Qi, P.C., He, Y.L., Wang, X.L., Meng, X.Z., “Experimental investigation of the optimal heat rejection pressure for a transcritical CO2 heat pump water heater,” Applied Thermal Engineering, 56, pp. 120-125, (2013).
  • Dittus, F.W., Boelter, L.M.K., “Heat transfer in automobile radiators of the tubular type,” Univ. Calif. Publ. Eng., 2(13), pp. 443-46, (1930).
  • Gnielinski, V., “New equations for heat and mass transfer in turbulent pipe and channel flow,” International Chemical Engineering, 16, pp. 359-368 (1976).
  • McLinden, M. Klein, S.A., Lemmon, E.W., Peskin, A.P., “Ther odyna ic and Transport properties of Refrigerants and Refrigerant Mixtures-REFPROP,” Version 8.0, National Institute of Standards and Technology, USA, (1998).
  • Yoon, S.H. , Kim, J.H., Hwang, Y.W., Kim, M.S., Min, K., Kim, Y., “Heat transfer and pressure drop characteristics during the in-tube cooling process of carbon dioxide in the supercritical region,” International Journal of Refrigeration, 26, pp. 857-864, (2003).
  • Son, C.H., Park, S.J., “An experimental study on heat transfer and pressure drop characteristics of carbon dioxide during gas cooling process in a horizontal tube,” International Journal of Refrigeration, 29, pp. 539-546, (2005).
  • Bassiouny, M K., Martin, H., “Flow distribution and pressure drop in plate heat exchangers-I,” Chemical Engineering Science, 39(4), pp. 693-700, (1984).
  • Rao, B.P., Kumar, P.K., Das, S.K., “Effect of flow distribution to the channels on the thermal performance of a plate heat exchanger,” Chemical Engineering and Processing, 41, pp. 49- 58, (2002).
  • Yu, P.Y., Lin, K.H., Lin, W.K., Wang, C.C., “Perfor ance of a tube-in-tube CO2 gas cooler,” Int. J. of Refrigeration, 35, pp. 2033-2038 (2012).
  • Yu, P.Y., Lin W.K., Wang, C.C., “Perfor ance evaluation of a tube-in-tube CO2 gas cooler used in a heat pump water heater,” Experimental Thermal and Fluid Science, 54, pp. 304-312, (2014).
  • Idelchik, I.E., “Handbook of Hydraulic Resistance,” pp. 413-501, 3rd Edition, New York, (1994).
  • Rao, B.P., Sunden, B., Das, S.K., “An experimental investigation of the port flow maldistribution in small and large plate package heat exchangers,” Applied Thermal Engineering, 26, pp. 1919-1926, (2006).
  • Gherasim, I., Galanis, N., Nguyen, C.T., “Effects of dissipation and temperature-dependent viscosity on the performance of plate heat exchangers,” Applied Thermal Engineering, 29, pp. 3132- 3139, (2009).

Performance and flow distribution of the plate heat exchanger with supercritical fluid of carbon dioxide

Year 2015, Volume: 1 Issue: 3, 143 - 151, 01.03.2015
https://doi.org/10.18186/jte.21471

Abstract

References

  • Han, W., Saled, K., Aute, V., Ding, G., Hwang, Y., Radermacher, R., “Numerical simulation and optimization of single-phase turbulent flow in chevron-type plate heat exchanger with sinusoidal corrugations,” HVAC&R Research, 17(2), pp. 186- 197, (2011).
  • Hashimoto K., “Technology and market development of CO2 heat pump water heaters (ECO CUTE) in Japan,” IEA Heat Pump Centre Newsletter, 12-16 (2006).
  • ASHRAE Handbook, Refrigeration (2010). ASHRAE, Atlanta, GA.
  • Lorentzen, G., Pettersen J., “A new, efficient and ambientally benign system for car air conditioning,” Int. J. Refrigeration, 16, pp. 4-12 (1993).
  • Lorentzen, G., “Revival of carbon dioxide as a refrigerant,” Int. J. Refrigeration, 17, pp. 292-300, (1994). Lorentzen, G., “The use of natural refrigerant: a complete solution to the CFC/HCFC predicament,” Int. J. Refrigeration, 18, pp. 190-197, (1994).
  • Qi, P.C., He, Y.L., Wang, X.L., Meng, X.Z., “Experimental investigation of the optimal heat rejection pressure for a transcritical CO2 heat pump water heater,” Applied Thermal Engineering, 56, pp. 120-125, (2013).
  • Dittus, F.W., Boelter, L.M.K., “Heat transfer in automobile radiators of the tubular type,” Univ. Calif. Publ. Eng., 2(13), pp. 443-46, (1930).
  • Gnielinski, V., “New equations for heat and mass transfer in turbulent pipe and channel flow,” International Chemical Engineering, 16, pp. 359-368 (1976).
  • McLinden, M. Klein, S.A., Lemmon, E.W., Peskin, A.P., “Ther odyna ic and Transport properties of Refrigerants and Refrigerant Mixtures-REFPROP,” Version 8.0, National Institute of Standards and Technology, USA, (1998).
  • Yoon, S.H. , Kim, J.H., Hwang, Y.W., Kim, M.S., Min, K., Kim, Y., “Heat transfer and pressure drop characteristics during the in-tube cooling process of carbon dioxide in the supercritical region,” International Journal of Refrigeration, 26, pp. 857-864, (2003).
  • Son, C.H., Park, S.J., “An experimental study on heat transfer and pressure drop characteristics of carbon dioxide during gas cooling process in a horizontal tube,” International Journal of Refrigeration, 29, pp. 539-546, (2005).
  • Bassiouny, M K., Martin, H., “Flow distribution and pressure drop in plate heat exchangers-I,” Chemical Engineering Science, 39(4), pp. 693-700, (1984).
  • Rao, B.P., Kumar, P.K., Das, S.K., “Effect of flow distribution to the channels on the thermal performance of a plate heat exchanger,” Chemical Engineering and Processing, 41, pp. 49- 58, (2002).
  • Yu, P.Y., Lin, K.H., Lin, W.K., Wang, C.C., “Perfor ance of a tube-in-tube CO2 gas cooler,” Int. J. of Refrigeration, 35, pp. 2033-2038 (2012).
  • Yu, P.Y., Lin W.K., Wang, C.C., “Perfor ance evaluation of a tube-in-tube CO2 gas cooler used in a heat pump water heater,” Experimental Thermal and Fluid Science, 54, pp. 304-312, (2014).
  • Idelchik, I.E., “Handbook of Hydraulic Resistance,” pp. 413-501, 3rd Edition, New York, (1994).
  • Rao, B.P., Sunden, B., Das, S.K., “An experimental investigation of the port flow maldistribution in small and large plate package heat exchangers,” Applied Thermal Engineering, 26, pp. 1919-1926, (2006).
  • Gherasim, I., Galanis, N., Nguyen, C.T., “Effects of dissipation and temperature-dependent viscosity on the performance of plate heat exchangers,” Applied Thermal Engineering, 29, pp. 3132- 3139, (2009).
There are 18 citations in total.

Details

Primary Language English
Journal Section Articles
Authors

Chi-Chuan Wang This is me

Chen-Xi Zhu This is me

Yi-Chun Tang This is me

Publication Date March 1, 2015
Submission Date May 14, 2015
Published in Issue Year 2015 Volume: 1 Issue: 3

Cite

APA Wang, C.-C., Zhu, C.-X., & Tang, Y.-C. (2015). Performance and flow distribution of the plate heat exchanger with supercritical fluid of carbon dioxide. Journal of Thermal Engineering, 1(3), 143-151. https://doi.org/10.18186/jte.21471
AMA Wang CC, Zhu CX, Tang YC. Performance and flow distribution of the plate heat exchanger with supercritical fluid of carbon dioxide. Journal of Thermal Engineering. March 2015;1(3):143-151. doi:10.18186/jte.21471
Chicago Wang, Chi-Chuan, Chen-Xi Zhu, and Yi-Chun Tang. “Performance and Flow Distribution of the Plate Heat Exchanger With Supercritical Fluid of Carbon Dioxide”. Journal of Thermal Engineering 1, no. 3 (March 2015): 143-51. https://doi.org/10.18186/jte.21471.
EndNote Wang C-C, Zhu C-X, Tang Y-C (March 1, 2015) Performance and flow distribution of the plate heat exchanger with supercritical fluid of carbon dioxide. Journal of Thermal Engineering 1 3 143–151.
IEEE C.-C. Wang, C.-X. Zhu, and Y.-C. Tang, “Performance and flow distribution of the plate heat exchanger with supercritical fluid of carbon dioxide”, Journal of Thermal Engineering, vol. 1, no. 3, pp. 143–151, 2015, doi: 10.18186/jte.21471.
ISNAD Wang, Chi-Chuan et al. “Performance and Flow Distribution of the Plate Heat Exchanger With Supercritical Fluid of Carbon Dioxide”. Journal of Thermal Engineering 1/3 (March 2015), 143-151. https://doi.org/10.18186/jte.21471.
JAMA Wang C-C, Zhu C-X, Tang Y-C. Performance and flow distribution of the plate heat exchanger with supercritical fluid of carbon dioxide. Journal of Thermal Engineering. 2015;1:143–151.
MLA Wang, Chi-Chuan et al. “Performance and Flow Distribution of the Plate Heat Exchanger With Supercritical Fluid of Carbon Dioxide”. Journal of Thermal Engineering, vol. 1, no. 3, 2015, pp. 143-51, doi:10.18186/jte.21471.
Vancouver Wang C-C, Zhu C-X, Tang Y-C. Performance and flow distribution of the plate heat exchanger with supercritical fluid of carbon dioxide. Journal of Thermal Engineering. 2015;1(3):143-51.

IMPORTANT NOTE: JOURNAL SUBMISSION LINK http://eds.yildiz.edu.tr/journal-of-thermal-engineering