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Year 2023, Volume: 9 Issue: 4, 1041 - 1052, 04.08.2023
https://doi.org/10.18186/thermal.1333937

Abstract

References

  • REFERENCES
  • [1] Rohsenow WM, Hartnett JP, Cho YI. Handbook of Heat Transfer. New York: McGraw-Hill; 1998. [2] Dixit T, Al-Hajri E, Paul MC, Nithiarasu P, Kumar S. High Performance, Microarchitected, Compact Heat Exchanger Enabled by 3D Printing Appl Therm Eng 2022;210:118339. [CrossRef] [3] Bergman TL, Bergman TL, Incropera FP, Dewitt DP, Lavine AS. Fundamentals of Heat and Mass Transfer. New Jersy: John Wiley & Sons; 2011. [4] Thulukkanam, K. Heat Exchanger Design Handbook. Boca Raton: CRC Press; 2000. [CrossRef] [5] Hewitt GF, Shires GL, Bott T. Process Heat Transfer. New York: Begell House; 1994. [6] Oguntala G, Sobamowo G, Abd‐Alhameed R. Effects of particle fouling and magnetic field on porous fin for improved cooling of consumer electronics. Heat Transfer 2020;49:779–799. [CrossRef] [7] Doğan B, Ozturk MM, Erbay LB. Numerical investigation of heat transfer and pressure drop characteristics in an offset strip fin heat exchanger. J Therm Eng 2021;7:1417–1431. [CrossRef] [8] Shkarah A. Convective heat transfer and fully developed flow for circular tube newtonian and non-newtonian fluids condition. J Therm Eng 2021;7:409–414. [CrossRef] [9] Patil PS, Dhande KK, Borse SL. Experimental investigation of heat transfer and pressure drop using combination of ribs and dimples. Aust J Mech Eng 2021;21:628641. [CrossRef] [10] Mohamed SA, Karimi MN. Analysis and optimization of vapor absorption generator-heat exchanger using kern method and CFD. J Therm Eng 2020;6:440–459. [CrossRef] [11] Rezende TR, Vianna RF, Luporini S. Simulation of a Plate Heat Exchanger Operating with Nanofluid Coolant Using CFD. Int J Heat Technol 2021;39:235–240. [CrossRef] [12] Amghar K. Numerical study of turbulent heat transfer in a horizontal channel provided with square blocks: effect of the inter blocks spacing. J Therm Eng 2021;7:650–665. [CrossRef] [13] Feroze T, Genc B. Estimating the effects of line brattice ventilation system variables in an empty heading in room and pillar mining using CFD. J South Afr Inst Min Metall 2016;116:1143–1152. [CrossRef] [14] Feroze T, Genc B. Analysis of the effect of ducted fan system variables on ventilation in an empty heading using CFD. J South Afr Inst Min Metall 2017;117:157–167. [CrossRef] [15] ANSYS. Ansys Fluent Theory Guide. Pennsylvania: Ansys Inc.; 2011;15317: 724–746. [16] Alfarawi, S. S. S., Azeldin El-sawi, and Hossin Omar. Exploring discontinuous meshing for CFD modelling of counter flow heat exchanger. J Adv Res Numer Heat Transf 2021;5:26–34. [17] Rocha DM, Kanizawa FT, Hayashi K, Hosokawa S, Tomiyama A, Ribatski G. Characterization of the velocity field external to a tube bundle using spatial filter velocimetry based on variable meshing scheme. Flow Turbul Combust 2020;105:1277–1301. [CrossRef] [18] Al-Faize MM, Jabar WM. The efficiency of number of tube passes of msf heat exchanger materials for water desalination. Mater Today Proceed 2022;49:2802–2805. [CrossRef] [19] Demianiuk A, Sorko SA. Analysis of flow and thermal phenomena in evacuated tube collectors. Acta Mech et Automat 2012;6:5–10. [20] Nasiruddin, Siddiqui MHK. Heat transfer augmentation in a heat exchanger tube using a baffle. Int J Heat Fluid Flow 2007;28:318–328. [CrossRef] [21] Kuruneru STW, Vafai K, Sauret E, Gu Y. Application of porous metal foam heat exchangers and the implications of particulate fouling for energy-intensive industries. Chem Eng Sci 2020;228:115968. [CrossRef] [22] Al-Zaidi, AH, Mahmoud MM, Karayiannis TG. Flow Boiling in Copper and Aluminium Microchannels. International J Heat Mass Transf 2022;194:123101. [CrossRef] [23] Senthilkumar P, Suyambazhahan S, Suresh PR, Velraj R. Enhancement of heat transfer performance in an aluminum heat sink using different nanocoatings. J Enhanc Heat Transf 2021;28:4161. [CrossRef] [24] Hanan A, Zahid U, Feroze T, Khan SZ. Analysis of the performance optimisation parameters of shell and tube heat exchanger using CFD. Aust J Mech Eng 2021;21:830843. [CrossRef] [25] Grzybowski, H., and Mosdorf, R. Modelling of pressure-drop instability in single and multi microchannels system. Acta Mech et Autom 2012;6:45–51. [26] Okbaz A, Pınarbaşı A, Olcay AB. Experimental investigation of effect of different tube row-numbers, fin pitches and operating conditions on thermal and hydraulic performances of louvered and wavy finned heat exchangers. Int J Therm Sci 2020;151:106256. [CrossRef]

A CFD investigation of the design variables affecting the performance of finned-tube heat exchangers

Year 2023, Volume: 9 Issue: 4, 1041 - 1052, 04.08.2023
https://doi.org/10.18186/thermal.1333937

Abstract

A wide variety of heating and cooling applications use heat exchangers. The increase in energy prices, the requirement for size reduction, and restriction on greenhouse gas emissions has led to the need for finding ways to develop efficient heat exchangers. A cost-efficient way to enhance the model of a heat exchanger by visualizing the effects of the design parameters is using Computational Fluid Dynamics (CFD). The reason for this exploration was to lead an examination of the varieties/changes in the general intensity move process for a Finned-Tube Heat Exchanger (FTHE), also known as Air Coil Heat Exchanger (ACHE) with a variety of plan boundaries like the quantity of tubes, course of action of tubes, and the material utilized for the intensity exchanger. The widely used heat exchanger that uses refrigerant R314a and air as the working fluids was simulated with different design modifications. The simulated results exhibited as to how the number of tubes, arrangement of coils/tubes, material of tubes, and density / spacing of fins, effects the pressure drop, temperature and velocities profiles, and heat exchangers’ transfer of a heat. The use of copper coils improved the heat transfer by approximately 61% as compared to aluminium coils.

References

  • REFERENCES
  • [1] Rohsenow WM, Hartnett JP, Cho YI. Handbook of Heat Transfer. New York: McGraw-Hill; 1998. [2] Dixit T, Al-Hajri E, Paul MC, Nithiarasu P, Kumar S. High Performance, Microarchitected, Compact Heat Exchanger Enabled by 3D Printing Appl Therm Eng 2022;210:118339. [CrossRef] [3] Bergman TL, Bergman TL, Incropera FP, Dewitt DP, Lavine AS. Fundamentals of Heat and Mass Transfer. New Jersy: John Wiley & Sons; 2011. [4] Thulukkanam, K. Heat Exchanger Design Handbook. Boca Raton: CRC Press; 2000. [CrossRef] [5] Hewitt GF, Shires GL, Bott T. Process Heat Transfer. New York: Begell House; 1994. [6] Oguntala G, Sobamowo G, Abd‐Alhameed R. Effects of particle fouling and magnetic field on porous fin for improved cooling of consumer electronics. Heat Transfer 2020;49:779–799. [CrossRef] [7] Doğan B, Ozturk MM, Erbay LB. Numerical investigation of heat transfer and pressure drop characteristics in an offset strip fin heat exchanger. J Therm Eng 2021;7:1417–1431. [CrossRef] [8] Shkarah A. Convective heat transfer and fully developed flow for circular tube newtonian and non-newtonian fluids condition. J Therm Eng 2021;7:409–414. [CrossRef] [9] Patil PS, Dhande KK, Borse SL. Experimental investigation of heat transfer and pressure drop using combination of ribs and dimples. Aust J Mech Eng 2021;21:628641. [CrossRef] [10] Mohamed SA, Karimi MN. Analysis and optimization of vapor absorption generator-heat exchanger using kern method and CFD. J Therm Eng 2020;6:440–459. [CrossRef] [11] Rezende TR, Vianna RF, Luporini S. Simulation of a Plate Heat Exchanger Operating with Nanofluid Coolant Using CFD. Int J Heat Technol 2021;39:235–240. [CrossRef] [12] Amghar K. Numerical study of turbulent heat transfer in a horizontal channel provided with square blocks: effect of the inter blocks spacing. J Therm Eng 2021;7:650–665. [CrossRef] [13] Feroze T, Genc B. Estimating the effects of line brattice ventilation system variables in an empty heading in room and pillar mining using CFD. J South Afr Inst Min Metall 2016;116:1143–1152. [CrossRef] [14] Feroze T, Genc B. Analysis of the effect of ducted fan system variables on ventilation in an empty heading using CFD. J South Afr Inst Min Metall 2017;117:157–167. [CrossRef] [15] ANSYS. Ansys Fluent Theory Guide. Pennsylvania: Ansys Inc.; 2011;15317: 724–746. [16] Alfarawi, S. S. S., Azeldin El-sawi, and Hossin Omar. Exploring discontinuous meshing for CFD modelling of counter flow heat exchanger. J Adv Res Numer Heat Transf 2021;5:26–34. [17] Rocha DM, Kanizawa FT, Hayashi K, Hosokawa S, Tomiyama A, Ribatski G. Characterization of the velocity field external to a tube bundle using spatial filter velocimetry based on variable meshing scheme. Flow Turbul Combust 2020;105:1277–1301. [CrossRef] [18] Al-Faize MM, Jabar WM. The efficiency of number of tube passes of msf heat exchanger materials for water desalination. Mater Today Proceed 2022;49:2802–2805. [CrossRef] [19] Demianiuk A, Sorko SA. Analysis of flow and thermal phenomena in evacuated tube collectors. Acta Mech et Automat 2012;6:5–10. [20] Nasiruddin, Siddiqui MHK. Heat transfer augmentation in a heat exchanger tube using a baffle. Int J Heat Fluid Flow 2007;28:318–328. [CrossRef] [21] Kuruneru STW, Vafai K, Sauret E, Gu Y. Application of porous metal foam heat exchangers and the implications of particulate fouling for energy-intensive industries. Chem Eng Sci 2020;228:115968. [CrossRef] [22] Al-Zaidi, AH, Mahmoud MM, Karayiannis TG. Flow Boiling in Copper and Aluminium Microchannels. International J Heat Mass Transf 2022;194:123101. [CrossRef] [23] Senthilkumar P, Suyambazhahan S, Suresh PR, Velraj R. Enhancement of heat transfer performance in an aluminum heat sink using different nanocoatings. J Enhanc Heat Transf 2021;28:4161. [CrossRef] [24] Hanan A, Zahid U, Feroze T, Khan SZ. Analysis of the performance optimisation parameters of shell and tube heat exchanger using CFD. Aust J Mech Eng 2021;21:830843. [CrossRef] [25] Grzybowski, H., and Mosdorf, R. Modelling of pressure-drop instability in single and multi microchannels system. Acta Mech et Autom 2012;6:45–51. [26] Okbaz A, Pınarbaşı A, Olcay AB. Experimental investigation of effect of different tube row-numbers, fin pitches and operating conditions on thermal and hydraulic performances of louvered and wavy finned heat exchangers. Int J Therm Sci 2020;151:106256. [CrossRef]
There are 2 citations in total.

Details

Primary Language English
Subjects Thermodynamics and Statistical Physics
Journal Section Articles
Authors

Hussaini Syed Mujtaba This is me 0000-0003-0308-6922

Tariq Feroze This is me 0000-0003-0308-6922

Ahmad Hanan This is me 0000-0001-5165-431X

Haider Ali Shams This is me 0000-0003-0309-2804

Publication Date August 4, 2023
Submission Date July 20, 2022
Published in Issue Year 2023 Volume: 9 Issue: 4

Cite

APA Mujtaba, H. S., Feroze, T., Hanan, A., Shams, H. A. (2023). A CFD investigation of the design variables affecting the performance of finned-tube heat exchangers. Journal of Thermal Engineering, 9(4), 1041-1052. https://doi.org/10.18186/thermal.1333937
AMA Mujtaba HS, Feroze T, Hanan A, Shams HA. A CFD investigation of the design variables affecting the performance of finned-tube heat exchangers. Journal of Thermal Engineering. August 2023;9(4):1041-1052. doi:10.18186/thermal.1333937
Chicago Mujtaba, Hussaini Syed, Tariq Feroze, Ahmad Hanan, and Haider Ali Shams. “A CFD Investigation of the Design Variables Affecting the Performance of Finned-Tube Heat Exchangers”. Journal of Thermal Engineering 9, no. 4 (August 2023): 1041-52. https://doi.org/10.18186/thermal.1333937.
EndNote Mujtaba HS, Feroze T, Hanan A, Shams HA (August 1, 2023) A CFD investigation of the design variables affecting the performance of finned-tube heat exchangers. Journal of Thermal Engineering 9 4 1041–1052.
IEEE H. S. Mujtaba, T. Feroze, A. Hanan, and H. A. Shams, “A CFD investigation of the design variables affecting the performance of finned-tube heat exchangers”, Journal of Thermal Engineering, vol. 9, no. 4, pp. 1041–1052, 2023, doi: 10.18186/thermal.1333937.
ISNAD Mujtaba, Hussaini Syed et al. “A CFD Investigation of the Design Variables Affecting the Performance of Finned-Tube Heat Exchangers”. Journal of Thermal Engineering 9/4 (August 2023), 1041-1052. https://doi.org/10.18186/thermal.1333937.
JAMA Mujtaba HS, Feroze T, Hanan A, Shams HA. A CFD investigation of the design variables affecting the performance of finned-tube heat exchangers. Journal of Thermal Engineering. 2023;9:1041–1052.
MLA Mujtaba, Hussaini Syed et al. “A CFD Investigation of the Design Variables Affecting the Performance of Finned-Tube Heat Exchangers”. Journal of Thermal Engineering, vol. 9, no. 4, 2023, pp. 1041-52, doi:10.18186/thermal.1333937.
Vancouver Mujtaba HS, Feroze T, Hanan A, Shams HA. A CFD investigation of the design variables affecting the performance of finned-tube heat exchangers. Journal of Thermal Engineering. 2023;9(4):1041-52.

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