480
Views
4
CrossRef citations to date
0
Altmetric
Original Articles

Effect of mean void fraction correlations on a shell-and-tube evaporator dynamic model performance

, , , &
Pages 1059-1072 | Received 06 Dec 2014, Accepted 23 Mar 2015, Published online: 22 Aug 2015

References

  • Belman, J.M., J. Navarro-Esbrí, D. Ginestar, and V. Milián. 2010. Steady-state model of a variable speed vapour compression system using R134a as a working fluid. International Journal of Energy Research 34(11):933–45.
  • Bendapudi, S. 2004. Development and evaluation of modeling approaches for transients in centrifugal chillers. PhD Thesis, Purdue University, West Lafayette, Indiana.
  • Bendapudi, S., and J.E. Braun. 2002. A review of literature on dynamic models of vapour compression equipment. ASHRAE Report; No. 4036–5, ASHRAE, Atlanta, GA.
  • Bendapudi, S., J.E. Braun, and E.A. Groll. 2008. A comparison of moving-boundary and finite-volume formulations for transients in centrifugal chillers. International Journal of Refrigeration 31:1437–52.
  • Bourdouxhe, J.P., M. Grodent, J.J. Lebrun, and C.A. Saavedra. 1994. A toolkit for primary HVAC system energy calculation—Part 2: Reciprocating chiller models. ASHRAE Transactions 100:774–86.
  • Bouzelin, L.O.S., S.C. Amico, J.V.C. Vargas, and J.A.R. Parise. 2005. Experimental development of an intelligent refrigeration system. International Journal of Refrigeration 28:165–75.
  • Browne, M.W., and P.K. Bansal. 1998. Challenges in modeling vapour compression liquid chillers. ASRHAE Transactions 104(Part 1A):474–86.
  • Chen, J.C. 1966. A correlation for boiling heat transfer of saturated fluids in convective flow. Industrial and Engineering Chemistry Process Design and Development 5:322–9.
  • Collier, J.G., and J.R. Thome. 1994. Convective Boiling and Condensation, Chapter 6, Void Fraction and Pressure Drop in Subcooled Boiling. New York: Oxford University Press Inc.
  • Cullimore, B.A., and T.J. Hendricks. 2001. Design and transient simulation of vehicle air conditioning systems. SAE Paper 2001-01-1692, Society of Automotive Engineers (SAE), Warrendale, PA.
  • Dalkilic, A.S., S. Laohalertdecha, and S. Wongwises. 2008. Effect of void fraction models on the two-phase friction factor of R134a during condensation in vertical downward flow in a smooth tube. International Communications in Heat and Mass Transfer 35:921–7.
  • Dittus, F.W., and L.M.K. Boelter. 1930. Publications on Engineering, Vol. 2, pp. 443–452. Berkeley, CA: University of California.
  • Eborn, J., H. Tummescheit, and K. Prölß. 2005. Air conditioning—a modelica library for dynamic simulation of AC Systems. Proceedings of the Fourth International Modelica Conference, Hamburg-Harburg, Germany, March 7–8, pp. 185–92.
  • Forster, H.K., and N. Zuber. 1955. Dynamics of vapour bubble growth and boiling heat transfer. AIChE Journal 1:531–5.
  • Gnielinski, V. 1976. New equations for heat and mass transfer in turbulent pipe and channel flow. International Chemical Engineering 16:359–68.
  • Gordon, J.M., and K.C. Ng. 2000. Cool Thermodynamics. Cambridge, UK: International Science Publishing.
  • Grald, E.W., and J.W. MacArthur. 1992. A moving-boundary formulation for modeling time-dependent two-phase flows. International Journal of Heat and Fluid Flow 13(3):266–72.
  • Haberschill, P., L. Gay, P. Aubouin, and M. Lallemand. 2003. Dynamic model of a vapor-compression refrigerating machine using R-407C. Science and Technology for the Built Environment 9(4):451–566.
  • Incropera, F.P., and D.P. DeWitt. 1996. Fundamentals of Heat and Mass Transfer, 4th Ed., pp. 423–433. New York: John Wiley & Sons.
  • Jakobsen, A., J. Antonius, and H.J. Hagaard-Knudsen. 1999. Experimental evaluation of the use of homogeneous and slip-flow two-phase dynamic models in evaporator modeling. Proceedings of the 20th International Congress of Refrigeration, Sydney, Australia, September 19–24 Paper no. 135.
  • Lemmon, E.W., M.L. Huber, and M.O. McLinden. 2007. REFPROP, NIST Standard Reference Database 23, v.8. National Institute of Standards, Gaithersburg, MD.
  • Li, P., Y. Li, and J.E. Seem. 2010. Modelica based dynamic modeling of water-cooled centrifugal chillers. International Refrigeration and Air Conditioning Conference, Paper 1091. . http://docs.lib.purdue.edu/iracc/1091.
  • Li, P., H. Qiao, Y. Li, J.E. Seem, J. Winkler, and X. Li. 2014. Recent advances in dynamic modeling of HVAC equipment. Part 1: Equipment modelling. Science and Technology for the Built Environment 20(1):136–49.
  • Limperich, D., M. Braun, G. Schmitz, and K. Prölß. 2005. System simulation of automotive refrigeration cycles. Proceedings of the Fourth International Modelica Conference, Hamburg-Harburg, Germany, March 7–8, pp. 193–9.
  • MacArthur, J.W., and E.W. Grald. 1989. Unsteady compressible two-phase flow model for predicting cyclic heat pump performance and a comparison with experimental data. International Journal of Refrigeration 12(1):29–41.
  • Milián, V., J. Navarro-Esbrí, D. Ginestar, F. Molés, and B. Peris. 2013. Dynamic model of a shell-and-tube condenser. Analysis of the mean void fraction correlation influence on the model performance. Energy 59:521–33.
  • Navarro-Esbrí, J., D. Ginestar, J.M. Belman, V. Milián, and G. Verdú. 2010. Application of a lumped model for predicting energy performance of a variable-speed vapour compression system. Applied Thermal Engineering 30(4):286–94.
  • Navarro-Esbrí, J., F. Molés, B. Peris, A. Barragán-Cervera, J.M. Mendoza-Miranda, A. Mota-Babiloni, and J.M. Belman. 2014. Shell-and-tube evaporator model performance with different two-phase flow heat transfer correlations. Experimental analysis using R134a and R1234yf. Applied Thermal Engineering 62(1):80–9.
  • Rasmussen, B.P. 2012. Dynamic modeling for vapor compression systems—I: Literature review. Science and Technology for the Built Environment 18(5):934–55.
  • Rasmussen, B.P., and A.G. Alleyne. 2006. Dynamic modeling and advanced control of air conditioning and refrigeration systems. ACRC Technical Report 244. . http://hdl.handle.net/2142/12355.
  • Rasmussen, B.P., and B. Shenoy. 2012. Dynamic modeling for vapor compression systems—Part II: Simulation tutorial. Science and Technology for the Built Environment 18(5):956–73.
  • Rice, C.K. 1987. The effect of void fraction correlation and the heat flux assumption on refrigerant charge inventory predictions. ASHRAE Transactions 93(1):341–67.
  • Roetzel, W., and Y. Xuan. 1999. Dynamic Behaviour of Heat Exchangers, Vol. 3. Southampton, UK: WITPress/Computational Mechanics Publications.
  • Saiz Jabardo, J.M., W.Gonzales Mamani, and M.R. Ianella. 2002. Modeling and experimental evaluation of an automotive air conditioning system with a variable capacity compressor. International Journal of Refrigeration 25:1157–72.
  • Thome, J.R. 2004. Wolverine Heat Transfer Engineering Data Book III. Decatur, AL: Wolverine Tube Inc.
  • Wallis, G.B. 1969. One-Dimensional Two-Phase Flow. New York: McGraw-Hill.
  • Wedekind, G.L., B.L. Bhatt, and B.T. Beck. 1978. A system mean void fraction model for predicting various transient phenomena associated with two phase evaporating and condensing flows. International Journal of Multiphase Flow 4:97–114.
  • Willatzen, M., N.B.O.L. Pettit, and L. Ploug-Sørensen. 1998. A general dynamic simulation model for evaporators and condensers in refrigeration. Part I: Moving-boundary formulation of two-phase flows with heat exchange. International Journal of Refrigeration 21:398–414.
  • Wilson, M.J., T.A. Newell, and J.C. Chato. 1998. Experimental investigation of void fraction during horizontal flow in larger diameter refrigeration applications. ACRC TR-140, Air Conditioning and Refrigeration Center, University of Illinois at Urbana Champaign, UL.
  • Woldesemayat, M.A., and A.J. Ghajar. 2007. Comparison of void fraction correlations for different flow patterns in horizontal and upward inclined pipes. International Journal of Multiphase Flow 33:347–70.
  • Zhang, W.J., and C.L. Zhang. 2006. A generalized moving boundary model for transient simulation of dry-expansion evaporators under larger disturbances. International Journal of Refrigeration 29:1119–27.
  • Zukauskas, A.A. 1987. Handbook of Single-Phase Convective Heat Transfer, 6.1–6.45, Convective heat transfer in cross flow. S. Kakac, R.K. Shah, and W. Aung, eds. New York: Wiley.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.