Publication Cover
Experimental Heat Transfer
A Journal of Thermal Energy Generation, Transport, Storage, and Conversion
Volume 33, 2020 - Issue 3
422
Views
40
CrossRef citations to date
0
Altmetric
Articles

An experimental study on heat transfer and fluid flow of rough plate heat exchanger using Al2O3/water nanofluid

&
Pages 261-281 | Received 09 Jan 2019, Accepted 24 May 2019, Published online: 04 Jun 2019

References

  • R. L. Webb and N. H. Kim, Principles of Enhanced Heat Transfer. 2nd. Boca Raton, Florida: CRC Press, Taylor Franncis Group, 2006.
  • A. E. Bergles, “Some perspectives on enhanced heat transfer second generation heat transfer technology,” J Heat Transfer, vol. 110, pp. 1082–1096, 1988. DOI: 10.1115/1.3250612.
  • S. Kakac, A. E. Bergeles, and W. O. Fernandes, Two-Phase Flow Heat Exchangers: Thermal-Hydraulic Fundamentals and Design, 1st, Eds. Hemisphere, Washington, D.C: Kluwer Academic Publishers, 1988.
  • N. A. C. Sidik, M. N. A. W. Muhamad, W. M. A. A. Japar, and Z. A. Rasid, “An overview of passive techniques for heat transfer augmentation in microchannel heat sink,” Int. Commun. Heat Mass Transfer, vol. 88, pp. 74–83, 2017. DOI: 10.1016/j.icheatmasstransfer.2017.08.009.
  • S. Z. Heris, S. G. Etemad, and M. N. Esfahany, “Convective heat transfer of a Cu/Water nanofluid flowing through a circular tube,” Exp. Heat Transfer, vol. 22, pp. 217–227, 2009.
  • M. Khoshvaght-Aliabadi and F. Hormozi, “Heat transfer enhancement by using copper–water nanofluid flow inside a pin channel,” Exp. Heat Transfer, vol. 28, pp. 446–463, 2015.
  • E. Nourafkan, G. Karimi, and J. Moradgholi, “Experimental study of laminar convective heat transfer and pressure drop of cuprous Oxide/Water nanofluid inside a circular tube,” Exp. Heat Transfer, vol. 28, pp. 58–68-463, 2015.
  • L. Wang, B. Sundén, and R. M. Manglik. Plate Heat Exchangers: Design, Applications and Performance. Southampton, Boston: Wit Press, 2010.
  • R. K. Shah and D. P. Sekulic, Fundamentals of Heat Exchanger Design. New York: John Wiley & Sons, 2003.
  • S. Kakaç, H. Liu, and A. Pramuanjaroenkij, Heat Exchangers Selection, Rating, and Thermal Design. 3rd. Boca Raton, Florida, USA: Taylor Francis Group, 2010.
  • J. E. Hesselgreaves, Compact Heat Exchangers: Selection, Design and Operation. Pergamon, Oxford, UK: Elsevier Science Ltd., 2001.
  • M. M. Abu-Khader, “Plate heat exchangers: recent advances,” Renew. Sustain. Energy Rev, vol. 16, pp. 1883–1891, 2012.
  • A. Perwez, S. Shende, and A. R. Kumar, “Heat transfer and friction factor characteristic of spherical and inclined teardrop dimple channel subjected to forced convection,” Exp. Heat Transfer, vol. 32, pp. 159–178, 2019.
  • A. R. S. Suri, A. Kumar, and R. Maithani, “Experimental determination of enhancement of heat transfer in a multiple square perforated twisted tape inserts heat exchanger tube,” Exp. Heat Transfer, vol. 31, pp. 85–105, 2018.
  • T. M. Abou Elmaaty, A. E. Kabeel, and M. Mahgoub, “Corrugated plate heat exchanger review,” Renew. Sustain. Energy Rev., vol. 70, pp. 852–860, 2017.
  • M. Bahiraei, et al., “Recent research contributions concerning use of nanofluids in heat exchangers: A critical review,” Appl. Therm. Eng, vol. 133, pp. 137–159, 2018.
  • B. C. Pak and Y. I. Cho, “Hydrodynamic and heat transfer study of dispersed fluids with submicron metallic oxide particles,” Exp. Heat Transf., vol. 11, pp. 151–170, 1998.
  • R. S. Khedkar, S. S. Sonawane, and K. L. Wasewar, “Water to nanofluids heat transfer in concentric tube heat exchanger: experimental study,” Procedia Eng, vol. 51, pp. 318–323, 2013.
  • C. T. Nguyen, G. Roy, C. Gauthier, and N. Galanis, “Heat transfer enhancement using Al2O3-water nanofluid for an electronic liquid cooling system,” Appl. Therm. Eng., vol. 27, pp. 1501–1506, 2007.
  • Y. Xuan and Q. Li, “Investigation on convective heat transfer and flow features of nanofluids,” J. Heat Transfer., vol. 125, pp. 151–155, 2003.
  • M. N. Pantzali, A. G. Kanaris, K. D. Antoniadis, A. A. Mouza, and S. V. Paras, “Effect of nanofluids on the performance of a miniature plate heat exchanger with modulated surface,” Int. J. Heat Fluid Flow., vol. 30, pp. 691–699, 2009.
  • Z. Wu, L. Wang, and B. Sunden, “Pressure drop and convective heat transfer of water and nanofluids in a double-pipe helical heat exchanger,” Appl. Therm. Eng., vol. 60, pp. 266–274, 2013.
  • B. Sun, C. Peng, R. Zuo, D. Yang, and H. Li, “Investigation on the flow and convective heat transfer characteristics of nanofluids in the plate heat exchanger,” Exp. Therm. Fluid Sci., vol. 76, pp. 75–86, 2016.
  • S. D. Pandey and V. K. Nema, “Experimental analysis of heat transfer and friction factor of nanofluid as a coolant in a corrugated plate heat exchanger,” Exp. Therm. Fluid Sci., vol. 38, pp. 248–256, 2012.
  • A. E. Kabeel, T. A. E. Maaty, and Y. E. Samadony, “The effect of using nano-particles on corrugated plate heat exchanger performance,” Appl. Therm. Eng, vol. 52, pp. 221–229, 2013.
  • M. Taws, C. T. Nguyen, N. Galanis, and I. Gherasim, “Experimental investigation of nanofluid heat transfer in a plate heat exchanger,” Proc. ASME 2012 Summer Heat Transf. Conf. HT2012, Rio Grande, Puerto Rico, USA, 2012, pp.1–8.
  • R. Barzegarian, M. K. Moraveji, and A. Aloueyan, “Experimental investigation on heat transfer characteristics and pressure drop of BPHE (brazed plate heat exchanger) using TiO2-water nanofluid,” Exp. Therm. Fluid Sci., vol. 74, pp. 11–18, 2016.
  • D. Huang, Z. Wu, and B. Sunden, “Pressure drop and convective heat transfer of Al2O3/water and MWCNT/water nanofluids in a chevron plate heat exchanger,” Int. J. Heat Mass Transf., vol. 89, pp. 620–626, 2015.
  • D. Huang, Z. Wub, and B. Sunden, “Effects of hybrid nanofluid mixture in plate heat exchangers,” Exp. Therm. Fluid Sci., vol. 72, pp. 190–196, 2016.
  • M. Goodarzi, et al., “Investigation of heat transfer and pressure drop of a counter flow corrugated plate heat exchanger using MWCNT based nanofluids,” Int. Commun. Heat Mass Transf., vol. 66, pp. 172–179, 2015.
  • K. Nilpueng and S. Wongwises, “Experimental study of single-phase heat transfer and pressure drop inside a plate heat exchanger with a rough surface,” Exp. Therm. Fluid Sci., vol. 68, pp. 268–275, 2015.
  • K. Nilpueng, T. Keawkamrop, H. Seon Ahn, and S. Wongwises, “Effect of surface roughness on the condensation of R-134a in vertical chevron gasketed plate heat exchangers,” Exp. Therm. Fluid Sci., vol. 91, pp. 54–63, 2018.
  • N. Pelevic and T. H. Van Der Meer, “Heat transfer and pressure drop in microchannels with random roughness,” Int. J. Therm. Sci., vol. 99, pp. 125–135, 2016.
  • K. Nilpueng, T. Keawkamrop, H. S. Ahn, and S. Wongwises, “Effect of chevron angle and surface roughness on thermal performance of single-phase water flow inside a plate heat exchanger,” Int. Commun. Heat Mass Transf., vol. 91, pp. 201–209, 2018.
  • R. Ranjbarzadeh, A. H. Meghdadi Isfahani, and M. Hojaji, “Experimental investigation of heat transfer and friction coefficient of the water/graphene oxide nanofluid in a pipe containing twisted tape inserts under air cross-flow,” Exp. Heat Transfer, vol. 31, pp. 373–390, 2108.
  • L. Guo, H. Xu, and L. Gong, “Influence of wall roughness models on fluid flow and heat transfer in microchannels,” Appl. Therm. Eng., vol. 84, pp. 399–408, 2015.
  • M. Faizal and M. R. Ahmed, “Experimental studies on a corrugated plate heat exchanger for small temperature difference applications,” Exp. Therm. Fluid Sci., vol. 36, pp. 242–248, 2012.
  • I. Gherasim, M. Taws, N. Galanis, and C. T. Nguyen, “Heat transfer and fluid flow in a plate heat exchanger part I. Experimental investigation,” Int. J. Therm. Sci, vol. 50, pp. 1492–1498, 2011.
  • M. Attalla, H. M. Maghrabie, and E. Specht, “An experimental investigation on fluid flow and heat transfer of rough mini-channel with rectangular cross section,” Exp. Therm. Fluid Sci., vol. 75, pp. 199–210, 2016.
  • D. Chavan and A. T. Pise, “Experimental investigation of convective heat transfer of Al2O3/water nanofluid in circular tube,” Heat Mass Transf, vol. 51, pp. 1237–1246, 2015.
  • M. Modak, A. K. Sharma, and S. K. Sahu, “An experimental investigation on heat transfer enhancement in circular jet impingement on hot surfaces by using Al2O3/water nano-fluids and aqueous high-alcohol surfactant solution,” Exp. Heat Transfer, vol. 31, pp. 275–296, 2018.
  • M. N. Pantzali, A. A. Mouza, and S. V. Paras, “Investigating the efficiency of nanofluids as coolants in plate heat exchangers (PHE),” Chem. Eng. Sci., vol. 64, pp. 3290–3300, 2009.
  • J. Fernández-Seara, F. J. Uhía, J. Sieres, and A. Campo, “A general review of the Wilson plot method and its modifications to determine convection coefficients in heat exchange devices,” Appl. Therm. Eng., vol. 27, pp. 2745–2757, 2007.
  • J. P. Holman, Experimental Methods for Engineers. 8th. New York, USA: McGraw-Hill, 2012.
  • R. K. Shah and W. W. Focke, “Plate heat exchanger and their design theory,” Heat Transfer Equipment Design, R. K. Shah, E. C. Subbarao, and R. A. Mashelkar, Eds. Washington: Hemisphere Publishing, 1988, pp. 227–254.
  • R. L. Webb, “Performance evaluation criteria for use of enhanced heat transfer surfaces in heat exchanger design,” Int. J. Heat Mass Transf., vol. 24, pp. 715–726, 1981.
  • A. K. Tiwari, P. Ghosh, and J. Sarkar, “Performance comparison of the plate heat exchanger using different nanofluids,” Exp. Therm. Fluid Sci., vol. 49, pp. 141–151, 2013.

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.