Research Article
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Year 2021, Volume: 7 Issue: 1, 307 - 323, 01.01.2021
https://doi.org/10.18186/thermal.850672

Abstract

References

  • [1] Srisomba R, Mahian O, Dalkilic AS, Wongwises S. Measurement of the void fraction of R-134a flowing through a horizontal tube, International Communications in Heat and Mass Transfer. 2014;56:8-14. doi:10.1016/j.icheatmasstransfer.2014.04.004.
  • [2] Chen H, Xu J, Li Z, Xing F, Xie J. Stratified two-phase flow pattern modulation in a horizontal tube by the mesh pore cylinder surface, Applied Energy. 2013;112(0):1283-90. doi:10.1016/j.apenergy.2012.11.062.
  • [3] Hrnjak P. Developing Adiabatic Two-Phase Flow in Headers-Distribution Issue in Parallel Flow Microchannel Heat Exchangers, Heat transfer engineering. 2004; 25(3): 61-68. doi:10.1080/01457630490280128.
  • [4] Awwad A, Xin RC, Dong ZF, Ebadian MA, Soliman HM. Measurement and correlation of the pressure drop in air-water two-phase flow in horizontal helicoidal pipes, International Journal of Multiphase Flow.1995;21(4):607-19.. doi: 10.1016/0301-9322(95)00011-L.
  • [5] Canière H, T'Joen C, Willockx A, De Paepe M, Christians M, Van Rooyen E, Liebenberg L, Meyer JP. Horizontal two-phase flow characterization for small diameter tubes with a capacitance sensor,Measurement Science and Technology. 2007;18(9):2898. doi:10.1088/0957-0233/18/9/020.
  • [6] Bhramara P, Rao VD, Sharma KV, Reddy TKK. CFD Analysis of Two-Phase Flow in a Horizontal PipePrediction of Pressure Drop, Proceedings of World Academy of Science: Engineering & Technology.2008; 42.
  • [7] Dalkilic A, Agra O, Teke I, Wongwises S. Comparison of frictional pressure drop models during annular flow condensation of R600a in a horizontal tube at low mass flux and of R134a in a vertical tube at high mass flux, International Journal of Heat and Mass Transfer. 2010;53(9):2052-2064. doi:10.1016/j.ijheatmasstransfer.2009.12.051.
  • [8] Ekambara K, Sean Sanders R, Nandakumar K, Masliyah JH. CFD Modeling of Gas-Liquid Bubbly Flow in Horizontal Pipes: Influence of Bubble Coalescence and Breakup, International Journal of Chemical Engineering. 2012;2012:20. doi: 10.1155/2012/620463.
  • [9] Kondou C, Hrnjak P. Condensation from superheated vapor flow of R744 and R410A at subcritical pressures in a horizontal smooth tube, International Journal of Heat and Mass Transfer. 2012;55(11–12):2779-91. doi: 10.1016/j.ijheatmasstransfer.2012.01.030.
  • [10] Dasari A, Desambala AB, Dasmahapatra AK, Mandal TK. Experimental studies and PNN prediction on flow pattern of viscous oil-water flow through a circular horizontal pipe, Industrial & Engineering Chemistry Research, 2013. doi: 10.1021/ie301430m.
  • [11] Becker A, Kapitz M, aus der Wiesche S. Numerical Simulation of Single Bubble Dynamics During Flow Boiling Conditions on a Horizontal Surface, Heat transfer engineering. 2014;35(5):461-71. doi:10.1080/01457632.2013.833045.
  • [12] Bottin M, Berlandis JP, Hervieu E, Lance M Marchand M, Ozturk OC, Serre G. Experimental investigation of a developing two-phase bubbly flow in horizontal pipe, International Journal of Multiphase Flow. 2014;60(0):161-79. doi: 10.1016/j.ijmultiphaseflow.2013.12.010.
  • [13] Rana KB, Agrawal GD, Mathur J, Puli U. Measurement of void fraction in flow boiling of ZnO–water nanofluids using image processing technique, Nuclear Engineering and Design. 2014;270(0):217-26. doi: 10.1016/j.nucengdes.2014.01.008.
  • [14] Duan J, Gong J Yao H, Deng T, Zhou J. Numerical modeling for stratified gas–liquid flow and heat transfer in pipeline, Applied Energy. 2014;115:83-94.. doi: 10.1016/j.apenergy.2013.10.050.
  • [15] Tong R. CFD simulation of separation of two-phase flows systems in Mechanic Automation and Control Engineering (MACE), Second International Conference;2011. IEEE. doi:10.1109/MACE.2011.5987125
  • [16] Shoukri M, Hassan I, Peng F. Steam-water stratified flow in T-junctions - Experiments and modelling, Transactions of The Canadian Society for Mechanical Engineering. 2002;26(2):241-59. doi:10.1139/tcsme-2002-0014.
  • [17] Bowers CD. Developing Adiabatic Two-Phase Flow: ProQuest, 2009.
  • [18] Zhao Y, Chen G, Ye C, Yuan Q. Gas–liquid two-phase flow in microchannel at elevated pressure, Chemical engineering science. 2013;87(0):122-32. doi: 10.1016/j.ces.2012.10.011.
  • [19] Bowers CD, Hrnjak PS. Using change point analysis for image processing of developing adiabatic twophase flow after expansion valve. in ASME/JSME 2007 5th Joint Fluids Engineering Conference; 2007. American Society of Mechanical Engineers. doi: 10.1115/FEDSM2007-37633.
  • [20] Fei P. Adiabatic Developing Two-phase Refrigerant Flow in Manifolds of Heat Exchangers. University of Illinois at Urbana-Champaign; 2004.
  • [21] Cheng L, Ribatski G, Quibèn JM, Thome JR. New prediction methods for CO2 evaporation inside tubes: Part I – A two-phase flow pattern map and a flow pattern based phenomenological model for two-phase flow frictional pressure drops, International Journal of Heat and Mass Transfer. 2008;51(1–2):111-24. doi: 10.1016/j.ijheatmasstransfer.2007.04.002.
  • [22] Roman AJ, Kraitzer PJ, Ervin JS, Hanchak MS, Byrd LW. Flow pattern identification of horizontal twophase refrigerant flow using neural networks, International Communications in Heat and Mass Transfer. 2016;71:254-64. doi: 10.1016/j.icheatmasstransfer.2015.12.033.
  • [23] Roul MK, Sahoo LK. CFD modeling of pressure drop caused by two-phase flow of oil/water emulsions through sudden expansions, International Journal of Engineering Research and Application.2012;2(6):1047-54.
  • [24] Walvekar RG, Choong TSY, Hussain SA, Khalid M, Chuah TG. Numerical study of dispersed oil–water turbulent flow in horizontal tube, Journal of Petroleum Science and Engineering. 2009;65(3):123-8. doi:10.1016/j.petrol.2008.12.019.
  • [25] FLUENT, A., 14.5, Theory Guide; ANSYS. Inc., Canonsburg, PA, 2012.
  • [26] Desamala AB, Dasari A, Vijayan V, Goshika BK, Dasmahapatra AK, Mandal TK. CFD Simulation and Validation of Flow Pattern Transition Boundaries during Moderately Viscous Oil-Water Two-Phase Flow through Horizontal Pipeline, International Journal of Chemical, Material Science and Engineering. 2013;7(1):1150.
  • [27] Kerdouss F, Bannari A, Proulx P. CFD modeling of gas dispersion and bubble size in a double turbine stirred tank, Chemical Engineering Science. 2006;61(10):3313-22. doi: 10.1016/j.ces.2005.11.061.
  • [28] El Hajal J, Thome JR, Cavallini A. Condensation in horizontal tubes, part 1: two-phase flow pattern map, International Journal of Heat and Mass Transfer. 2003;46(18):3349-63.
  • [29] Mahmood RA. Experimental and computational investigation of gravity separation in a vertical flash tank separator in Faculty of Health, Engineering and Sciences - School of Mechanical and Electrical Engineering, University of Southern Queensland; 2018.
  • [30] Mahmood RA, Buttsworth D, Malpress R. Computational and Experimental Investigation of the Vertical Flash Tank Separator Part 1: Effect of Parameters on Separation Efficiency, International Journal of AirConditioning and Refrigeration. 2019;27(1). doi: 10.1142/S2010132519500056.
  • [31] Mahmood RA, Buttsworth D, Malpress R. Computational and Experimental Investigation of using an Extractor in the Vertical Gravitational Flash Tank Separator, International Journal of Automotive and Mechanical Engineering. 2019;16(2):6706-22.
  • [32] Parkash O. Flow characterization of multi-phase particulate slurry in thermal power using computational fluid dynamics, Journal of Thermal Engineering. 2020;6(1):187-203.

CFD NUMERICAL AND EXPERIMENTAL INVESTIGATION OF TWO-PHASE FLOW DEVELOPMENT AFTER AN EXPANSION DEVICE IN A HORIZONTAL PIPE

Year 2021, Volume: 7 Issue: 1, 307 - 323, 01.01.2021
https://doi.org/10.18186/thermal.850672

Abstract

To optimize a vertical flash tank separator, the characteristics of the flow entering the separator are required to be known. A flash tank separator improves the performance of a refrigeration cycle by separating the liquid from liquid-gas flow and providing the evaporator with only liquid refrigerant. This technique improves
the effective area and enhances the heat transfer coefficient in the evaporator. This paper investigates the influence of the inlet operating conditions to an expansion device, on the adiabatic two-phase flow development in a horizontal pipe downstream from the expansion device. This work also compares three dimensional numerical
simulations and experimental observations for the two-phase flow development after the expansion device in the horizontal pipe. A general trend of the two-phase flow after the expansion device was gradually developed and the expansion length was identified at less than 200 mm from the inlet. The two-phase flow behaviour was
recorded using a digital camera recording the flow behaviour at the upstream and downstream of the horizontal tube. The results revealed that an increase of the mass flow rate causes an increase in the void fraction and a reduction in the slip ratio in the developed region. The simulations underestimate the expansion length and the
mean difference between the experimental data and the numerical results is 8 %.

References

  • [1] Srisomba R, Mahian O, Dalkilic AS, Wongwises S. Measurement of the void fraction of R-134a flowing through a horizontal tube, International Communications in Heat and Mass Transfer. 2014;56:8-14. doi:10.1016/j.icheatmasstransfer.2014.04.004.
  • [2] Chen H, Xu J, Li Z, Xing F, Xie J. Stratified two-phase flow pattern modulation in a horizontal tube by the mesh pore cylinder surface, Applied Energy. 2013;112(0):1283-90. doi:10.1016/j.apenergy.2012.11.062.
  • [3] Hrnjak P. Developing Adiabatic Two-Phase Flow in Headers-Distribution Issue in Parallel Flow Microchannel Heat Exchangers, Heat transfer engineering. 2004; 25(3): 61-68. doi:10.1080/01457630490280128.
  • [4] Awwad A, Xin RC, Dong ZF, Ebadian MA, Soliman HM. Measurement and correlation of the pressure drop in air-water two-phase flow in horizontal helicoidal pipes, International Journal of Multiphase Flow.1995;21(4):607-19.. doi: 10.1016/0301-9322(95)00011-L.
  • [5] Canière H, T'Joen C, Willockx A, De Paepe M, Christians M, Van Rooyen E, Liebenberg L, Meyer JP. Horizontal two-phase flow characterization for small diameter tubes with a capacitance sensor,Measurement Science and Technology. 2007;18(9):2898. doi:10.1088/0957-0233/18/9/020.
  • [6] Bhramara P, Rao VD, Sharma KV, Reddy TKK. CFD Analysis of Two-Phase Flow in a Horizontal PipePrediction of Pressure Drop, Proceedings of World Academy of Science: Engineering & Technology.2008; 42.
  • [7] Dalkilic A, Agra O, Teke I, Wongwises S. Comparison of frictional pressure drop models during annular flow condensation of R600a in a horizontal tube at low mass flux and of R134a in a vertical tube at high mass flux, International Journal of Heat and Mass Transfer. 2010;53(9):2052-2064. doi:10.1016/j.ijheatmasstransfer.2009.12.051.
  • [8] Ekambara K, Sean Sanders R, Nandakumar K, Masliyah JH. CFD Modeling of Gas-Liquid Bubbly Flow in Horizontal Pipes: Influence of Bubble Coalescence and Breakup, International Journal of Chemical Engineering. 2012;2012:20. doi: 10.1155/2012/620463.
  • [9] Kondou C, Hrnjak P. Condensation from superheated vapor flow of R744 and R410A at subcritical pressures in a horizontal smooth tube, International Journal of Heat and Mass Transfer. 2012;55(11–12):2779-91. doi: 10.1016/j.ijheatmasstransfer.2012.01.030.
  • [10] Dasari A, Desambala AB, Dasmahapatra AK, Mandal TK. Experimental studies and PNN prediction on flow pattern of viscous oil-water flow through a circular horizontal pipe, Industrial & Engineering Chemistry Research, 2013. doi: 10.1021/ie301430m.
  • [11] Becker A, Kapitz M, aus der Wiesche S. Numerical Simulation of Single Bubble Dynamics During Flow Boiling Conditions on a Horizontal Surface, Heat transfer engineering. 2014;35(5):461-71. doi:10.1080/01457632.2013.833045.
  • [12] Bottin M, Berlandis JP, Hervieu E, Lance M Marchand M, Ozturk OC, Serre G. Experimental investigation of a developing two-phase bubbly flow in horizontal pipe, International Journal of Multiphase Flow. 2014;60(0):161-79. doi: 10.1016/j.ijmultiphaseflow.2013.12.010.
  • [13] Rana KB, Agrawal GD, Mathur J, Puli U. Measurement of void fraction in flow boiling of ZnO–water nanofluids using image processing technique, Nuclear Engineering and Design. 2014;270(0):217-26. doi: 10.1016/j.nucengdes.2014.01.008.
  • [14] Duan J, Gong J Yao H, Deng T, Zhou J. Numerical modeling for stratified gas–liquid flow and heat transfer in pipeline, Applied Energy. 2014;115:83-94.. doi: 10.1016/j.apenergy.2013.10.050.
  • [15] Tong R. CFD simulation of separation of two-phase flows systems in Mechanic Automation and Control Engineering (MACE), Second International Conference;2011. IEEE. doi:10.1109/MACE.2011.5987125
  • [16] Shoukri M, Hassan I, Peng F. Steam-water stratified flow in T-junctions - Experiments and modelling, Transactions of The Canadian Society for Mechanical Engineering. 2002;26(2):241-59. doi:10.1139/tcsme-2002-0014.
  • [17] Bowers CD. Developing Adiabatic Two-Phase Flow: ProQuest, 2009.
  • [18] Zhao Y, Chen G, Ye C, Yuan Q. Gas–liquid two-phase flow in microchannel at elevated pressure, Chemical engineering science. 2013;87(0):122-32. doi: 10.1016/j.ces.2012.10.011.
  • [19] Bowers CD, Hrnjak PS. Using change point analysis for image processing of developing adiabatic twophase flow after expansion valve. in ASME/JSME 2007 5th Joint Fluids Engineering Conference; 2007. American Society of Mechanical Engineers. doi: 10.1115/FEDSM2007-37633.
  • [20] Fei P. Adiabatic Developing Two-phase Refrigerant Flow in Manifolds of Heat Exchangers. University of Illinois at Urbana-Champaign; 2004.
  • [21] Cheng L, Ribatski G, Quibèn JM, Thome JR. New prediction methods for CO2 evaporation inside tubes: Part I – A two-phase flow pattern map and a flow pattern based phenomenological model for two-phase flow frictional pressure drops, International Journal of Heat and Mass Transfer. 2008;51(1–2):111-24. doi: 10.1016/j.ijheatmasstransfer.2007.04.002.
  • [22] Roman AJ, Kraitzer PJ, Ervin JS, Hanchak MS, Byrd LW. Flow pattern identification of horizontal twophase refrigerant flow using neural networks, International Communications in Heat and Mass Transfer. 2016;71:254-64. doi: 10.1016/j.icheatmasstransfer.2015.12.033.
  • [23] Roul MK, Sahoo LK. CFD modeling of pressure drop caused by two-phase flow of oil/water emulsions through sudden expansions, International Journal of Engineering Research and Application.2012;2(6):1047-54.
  • [24] Walvekar RG, Choong TSY, Hussain SA, Khalid M, Chuah TG. Numerical study of dispersed oil–water turbulent flow in horizontal tube, Journal of Petroleum Science and Engineering. 2009;65(3):123-8. doi:10.1016/j.petrol.2008.12.019.
  • [25] FLUENT, A., 14.5, Theory Guide; ANSYS. Inc., Canonsburg, PA, 2012.
  • [26] Desamala AB, Dasari A, Vijayan V, Goshika BK, Dasmahapatra AK, Mandal TK. CFD Simulation and Validation of Flow Pattern Transition Boundaries during Moderately Viscous Oil-Water Two-Phase Flow through Horizontal Pipeline, International Journal of Chemical, Material Science and Engineering. 2013;7(1):1150.
  • [27] Kerdouss F, Bannari A, Proulx P. CFD modeling of gas dispersion and bubble size in a double turbine stirred tank, Chemical Engineering Science. 2006;61(10):3313-22. doi: 10.1016/j.ces.2005.11.061.
  • [28] El Hajal J, Thome JR, Cavallini A. Condensation in horizontal tubes, part 1: two-phase flow pattern map, International Journal of Heat and Mass Transfer. 2003;46(18):3349-63.
  • [29] Mahmood RA. Experimental and computational investigation of gravity separation in a vertical flash tank separator in Faculty of Health, Engineering and Sciences - School of Mechanical and Electrical Engineering, University of Southern Queensland; 2018.
  • [30] Mahmood RA, Buttsworth D, Malpress R. Computational and Experimental Investigation of the Vertical Flash Tank Separator Part 1: Effect of Parameters on Separation Efficiency, International Journal of AirConditioning and Refrigeration. 2019;27(1). doi: 10.1142/S2010132519500056.
  • [31] Mahmood RA, Buttsworth D, Malpress R. Computational and Experimental Investigation of using an Extractor in the Vertical Gravitational Flash Tank Separator, International Journal of Automotive and Mechanical Engineering. 2019;16(2):6706-22.
  • [32] Parkash O. Flow characterization of multi-phase particulate slurry in thermal power using computational fluid dynamics, Journal of Thermal Engineering. 2020;6(1):187-203.
There are 32 citations in total.

Details

Primary Language English
Subjects Engineering
Journal Section Articles
Authors

Raid Ahmed Mahmood This is me 0000-0002-3237-9487

David Buttsworth This is me

Ray Malpress This is me 0000-0003-2892-2296

Ahmad Sharifian-barforoush This is me 0000-0002-3810-3342

Publication Date January 1, 2021
Submission Date December 6, 2018
Published in Issue Year 2021 Volume: 7 Issue: 1

Cite

APA Mahmood, R. A., Buttsworth, D., Malpress, R., Sharifian-barforoush, A. (2021). CFD NUMERICAL AND EXPERIMENTAL INVESTIGATION OF TWO-PHASE FLOW DEVELOPMENT AFTER AN EXPANSION DEVICE IN A HORIZONTAL PIPE. Journal of Thermal Engineering, 7(1), 307-323. https://doi.org/10.18186/thermal.850672
AMA Mahmood RA, Buttsworth D, Malpress R, Sharifian-barforoush A. CFD NUMERICAL AND EXPERIMENTAL INVESTIGATION OF TWO-PHASE FLOW DEVELOPMENT AFTER AN EXPANSION DEVICE IN A HORIZONTAL PIPE. Journal of Thermal Engineering. January 2021;7(1):307-323. doi:10.18186/thermal.850672
Chicago Mahmood, Raid Ahmed, David Buttsworth, Ray Malpress, and Ahmad Sharifian-barforoush. “CFD NUMERICAL AND EXPERIMENTAL INVESTIGATION OF TWO-PHASE FLOW DEVELOPMENT AFTER AN EXPANSION DEVICE IN A HORIZONTAL PIPE”. Journal of Thermal Engineering 7, no. 1 (January 2021): 307-23. https://doi.org/10.18186/thermal.850672.
EndNote Mahmood RA, Buttsworth D, Malpress R, Sharifian-barforoush A (January 1, 2021) CFD NUMERICAL AND EXPERIMENTAL INVESTIGATION OF TWO-PHASE FLOW DEVELOPMENT AFTER AN EXPANSION DEVICE IN A HORIZONTAL PIPE. Journal of Thermal Engineering 7 1 307–323.
IEEE R. A. Mahmood, D. Buttsworth, R. Malpress, and A. Sharifian-barforoush, “CFD NUMERICAL AND EXPERIMENTAL INVESTIGATION OF TWO-PHASE FLOW DEVELOPMENT AFTER AN EXPANSION DEVICE IN A HORIZONTAL PIPE”, Journal of Thermal Engineering, vol. 7, no. 1, pp. 307–323, 2021, doi: 10.18186/thermal.850672.
ISNAD Mahmood, Raid Ahmed et al. “CFD NUMERICAL AND EXPERIMENTAL INVESTIGATION OF TWO-PHASE FLOW DEVELOPMENT AFTER AN EXPANSION DEVICE IN A HORIZONTAL PIPE”. Journal of Thermal Engineering 7/1 (January 2021), 307-323. https://doi.org/10.18186/thermal.850672.
JAMA Mahmood RA, Buttsworth D, Malpress R, Sharifian-barforoush A. CFD NUMERICAL AND EXPERIMENTAL INVESTIGATION OF TWO-PHASE FLOW DEVELOPMENT AFTER AN EXPANSION DEVICE IN A HORIZONTAL PIPE. Journal of Thermal Engineering. 2021;7:307–323.
MLA Mahmood, Raid Ahmed et al. “CFD NUMERICAL AND EXPERIMENTAL INVESTIGATION OF TWO-PHASE FLOW DEVELOPMENT AFTER AN EXPANSION DEVICE IN A HORIZONTAL PIPE”. Journal of Thermal Engineering, vol. 7, no. 1, 2021, pp. 307-23, doi:10.18186/thermal.850672.
Vancouver Mahmood RA, Buttsworth D, Malpress R, Sharifian-barforoush A. CFD NUMERICAL AND EXPERIMENTAL INVESTIGATION OF TWO-PHASE FLOW DEVELOPMENT AFTER AN EXPANSION DEVICE IN A HORIZONTAL PIPE. Journal of Thermal Engineering. 2021;7(1):307-23.

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