Skip to main content
Log in

Role of gravity in condensation flow of R1234ze(E) inside horizontal mini/macro-channels

  • Research Article
  • Published:
Experimental and Computational Multiphase Flow Aims and scope Submit manuscript

A Correction to this article was published on 05 February 2022

This article has been updated

Abstract

The condensation patterns of R1234ze(E) inside horizontal mini/macro-channels were numerically investigated under normal-gravity and zero-gravity conditions. The gravity effects on condensation heat transfer coefficients, liquid film thickness, film distribution, cross-sectional stream-traces, and liquid-phase velocity were analyzed detailedly. The influence of surface tension on condensation flow was also discussed. The gravity effect on condensation heat transfer coefficients was negligible in mini-channels with D = 1 mm, while was important for D = 2 mm and D = 4.57 mm. The gravity effect can either enhance or weaken the condensation heat transfer coefficient, which was dependent on the tube diameter and vapor quality. The enhancement on heat transfer caused by the gravity was more pronounced at lower vapor quality and mass fluxes with a larger diameter tube. The gravity affected the condensation heat performance through changing the vapor-liquid distribution, rather than the film thickness. The gravity has a great influence on the condensation flow field in both circumferential and axial direction. The surface tension played an important role in heat transfer under zero-gravity condition.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Institutional subscriptions

Similar content being viewed by others

Change history

References

  • Akhavan-Behabadi, M. A., Kumar, R., Mohseni, S. G. 2007. Condensation heat transfer of R-134a inside a microfin tube with different tube inclinations. Int J Heat Mass Transfer, 50: 4864–4871.

    Article  Google Scholar 

  • Brackbill, J. U., Kothe, D. B., Zemach, C. 1992. A continuum method for modeling surface tension. J Comput Phys, 100: 335–354.

    Article  MathSciNet  Google Scholar 

  • Coleman, J. W., Garimella, S. 2003. Two-phase flow regimes in round, square and rectangular tubes during condensation of refrigerant R134a. Int J Refrig, 26: 117–128.

    Article  Google Scholar 

  • Da Riva, E., del Col, D. 2011. Effect of gravity during condensation of r134a in a circular minichannel. Microgravity Sci Tec, 23: 87–97.

    Article  Google Scholar 

  • Da Riva, E., del Col, D. 2012. Numerical simulation of laminar liquid film condensation in a horizontal circular minichannel. J Heat Transfer, 134: 051019

  • Da Riva, E., del Col, D., Garimella, S. V., Cavallini, A. 2012. The importance of turbulence during condensation in a horizontal circular minichannel. Int J Heat Mass Transfer, 55: 3470–3481.

    Article  Google Scholar 

  • Del Col, D., Bortolato, M., Azzolin, M., Bortolin, S. 2015. Condensation heat transfer and two-phase frictional pressure drop in a single minichannel with R1234ze(E) and other refrigerants. Int J Refrig, 50: 87–103.

    Article  Google Scholar 

  • Dobson, M. K., Chato, J. C., Hinde, D. K., Wang, S. P. 1994. Experimental evaluation of internal condensation of refrigerants R-134a and R-12. ASHRAE Transactions, 100: 744–754.

    Google Scholar 

  • Ewim, D. R. E., Meyer, J. P., Noori Rahim Abadi, S. M. A. 2018. Condensation heat transfer coefficients in an inclined smooth tube at low mass fluxes. Int J Heat Mass Transfer, 123: 455–467.

    Article  Google Scholar 

  • Gu, X., Wen, J., Wang, C. L., Zhang, X., Wang, S. M., Tu, J. Y. 2018. Condensation flow patterns and model assessment for R1234ze(E) in horizontal mini/macro-channels. Int J Therm Sci, 134: 140–159.

    Article  Google Scholar 

  • Lee, H., Kharangate, C. R., Mascarenhas, N., Park, I., Mudawar, I. 2015. Experimental and computational investigation of vertical downflow condensation. Int J Heat Mass Transfer, 85: 865–879.

    Article  Google Scholar 

  • Lee, H., Mudawar, I., Hasan, M. M. 2013. Experimental and theoretical investigation of annular flow condensation in microgravity. Int J Heat Mass Transfer, 61: 293–309.

    Article  Google Scholar 

  • Lee, H., Park, I., Konishi, C., Mudawar, I., May, R. I., Juergens, J. R., Wagner, J. D., Hall, N. R., Nahra, H. K., Hasan, M. M., MacKey, J. R. 2014. Experimental investigation of flow condensation in microgravity. J Heat Transfer, 136: 02150

    Article  Google Scholar 

  • Lee, W. H. 1980. A pressure iteration scheme for two-phase flow modeling. In: Multiphase Transport Fundamentals, Reactor Safety, Applications, Vol. 1. Veziroglu, T. N. Ed. Washington, DC: Hemisphere Publishing.

  • Lemmon, E. W., Huber, M. L., McLinden, M. O. 2010. NIST standard reference 23: Reference fluid thermodynamic and transport properties - REFPROP, Version 9.0. Gaithersburg: National Institute of Standard and Technology, Standard Reference Data Program.

    Google Scholar 

  • Li, W., Zhang, J. Z., Mi, P. F., Zhao, J. F., Tao, Z., Childs, P. R. N., Shih, T. I. P. 2017. The effect of gravity on R410A condensing flow in horizontal circular tubes. Numer Heat Tr A: Appl, 71: 327–340.

    Article  Google Scholar 

  • Lips, S., Meyer, J. P. 2012a. Effect of gravity forces on heat transfer and pressure drop during condensation of r134a. Microgravity Sci Tec, 24: 157–164.

    Article  Google Scholar 

  • Lips, S., Meyer, J. P. 2012b. Experimental study of convective condensation in an inclined smooth tube. Part I: Inclination effect on flow pattern and heat transfer coefficient. Int J Heat Mass Transfer, 55: 395–404.

    Article  Google Scholar 

  • Menter, F. R. 1994. Two-equation eddy-viscosity turbulence models for engineering applications. AIAA J, 32: 1598–1605.

    Article  Google Scholar 

  • Meyer, J. P., Dirker, J., Adelaja, A. O. 2014. Condensation heat transfer in smooth inclined tubes for R134a at different saturation temperatures. Int J Heat Mass Transfer, 70: 515–525.

    Article  Google Scholar 

  • Mohseni, S. G., Akhavan-Behabadi, M. A. 2011. Visual study of flow patterns during condensation inside a microfin tube with different tube inclinations. Int Commun Heat Mass, 38: 1156–1161.

    Article  Google Scholar 

  • Mohseni, S. G., Akhavan-Behabadi, M. A., Saeedinia, M. 2013. Flow pattern visualization and heat transfer characteristics of R-134a during condensation inside a smooth tube with different tube inclinations. Int J Heat Mass Transfer, 60: 598–602.

    Article  Google Scholar 

  • Nema, G., Garimella, S., Fronk, B. M. 2014. Flow regime transitions during condensation in microchannels. Int J Refrig, 40: 227–240.

    Article  Google Scholar 

  • Sun, D. L., Xu, J. L., Wang, L. 2012. Development of a vapor-liquid phase change model for volume-of-fluid method in FLUENT. Int Commun Heat Mass, 39: 1101–1106.

    Article  Google Scholar 

  • Wang, H. S., Rose, J. W. 2005. A theory of film condensation in horizontal noncircular section microchannels. J Heat Transfer, 127: 1096–1105.

    Article  Google Scholar 

  • Wang, H. S., Rose, J. W. 2006. Film condensation in horizontal microchannels: Effect of channel shape. Int J Therm Sci, 45: 1205–1212.

    Article  Google Scholar 

  • Wang, H. S., Rose, J. W. 2011. Theory of heat transfer during condensation in microchannels. Int J Heat Mass Transfer, 54: 2525–2534.

    Article  Google Scholar 

  • Zhang, J. Z., Li, W. 2016. Numerical study on heat transfer and pressure drop characteristics of R410A condensation in horizontal circular mini/micro-tubes. Can J Chem Eng, 94: 1809–1819.

    Article  Google Scholar 

Download references

Acknowledgements

This work is supported by the National Natural Science Foundation of China (No. 51676146), for which the authors are thankful.

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to Simin Wang.

Rights and permissions

Reprints and permissions

About this article

Check for updates. Verify currency and authenticity via CrossMark

Cite this article

Gu, X., Wen, J., Tian, J. et al. Role of gravity in condensation flow of R1234ze(E) inside horizontal mini/macro-channels. Exp. Comput. Multiph. Flow 1, 219–229 (2019). https://doi.org/10.1007/s42757-019-0010-5

Download citation

  • Received:

  • Revised:

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s42757-019-0010-5

Keywords

Navigation