Research Article

Numerical simulation on performance evaluation among metal and oxide based nanofluids for power savings application of a circular tube

Volume: 7 Number: 5 July 1, 2021
  • Md Insiat Islam Rabby *
  • Farzad Hossaın
  • S. A. M. Shafwat Amın
  • A. K. M. Sadrul Islam
EN

Numerical simulation on performance evaluation among metal and oxide based nanofluids for power savings application of a circular tube

Abstract

The advancement of heat transfer techniques is a challenge to the researcher in this era. Implementation of nanotechnology is one of the potential techniques which enhance the heat transfer rate in a significant amount. Subsequently, nanotechnology can reduce the requirement of pumping power. However, suspension of nanoparticle with liquid to produce a new working fluid called nanofluid which has better thermal and fluid dynamic properties in comparison to pure liquid is introduced as a typical nanotechnology technique in the heat transfer area. In this study, the thermal performance of two categories of nanofluids metal-based (Cu-water and Ag-water) and oxide-based (Al2O3-water, CuO-water, BeO-water) with 1–5% volume fractions have been analysed for the laminar flow region of a circular tube which is fully developed under 2D control volume finite element method. The heat transfer was analysed for a range of Reynolds numbers from 100 to 1000 with a constant heat flux of 500 W/m2 applied on the tube wall. For evaluating the performance among nanofluids, the Figure of Merits (FOM), pumping power, Nusselt number enhancement ratio, and heat transfer coefficient ratio of the base fluid and nanofluids have been calculated and compared. The computational results show that in terms of Nusselt number and heat transfer coefficient, all nanofluids provide higher enhancement compared to pure water. Meanwhile, for this higher enhancement, nanofluids required significantly power pumping power in comparison to pure water. However, the power has been saved 86.26% for Ag-water nanofluid, 72.84% for Cu-water, 42.36% for CuO-water, 40.99% for Al2O3-water, and 26.58% for BeO-water. Between the mentioned two categories of nanofluids, metal-based nanofluids provide the highest heat transfer enhancement and lowest pumping power requirement compared to oxide-based because of their higher thermal conductivity and other fluid and thermal properties. For clearing the enhancement of heat transfer rate over-pumping power, a dimensionless number FOM has been calculated whereas metal-based nanofluids provide the highest value of FOM (1.863 for Ag-water nanofluid) in comparison to oxide-based (1.266 for BeO-water). In the meantime, the comparison between nanofluids also reveals that among all the nanofluids, metal-based Ag-water nanofluids provide the highest heat transfer enhancement and oxide-based BeO-water provide the lowest heat transfer enhancement in terms of pumping power requirements. Lastly, the study concluded that suspension of metal-based nanoparticles with base fluid has better capability to save pumping power (86.26% for Ag-water nanofluid) by providing the highest enhancement of heat transfer rate whereas oxide-based nanoparticles show the lowest capability to save pumping power (26.58% for BeO-water) compared to the base fluid.

Keywords

References

  1. [1] Saha G, Paul MC. Numerical analysis of the heat transfer behaviour of water based Al2O3 and TiO2 nanofluids in a circular pipe under the turbulent flow condition. International Communications in Heat and Mass Transfer 2014; 56:96-108. https://doi.org/10.1016/j.icheatmasstransfer.2014.06.008
  2. [2] Duangthongsuk W, Wongwises S. An experimental study on the heat transfer performance and pressure drop of TiO2-water nanofluids flowing under a turbulent flow regime. International Journal of Heat and Mass Transfer 2010; 53(1-3):334-44. https://doi.org/10.1016/j.ijheatmasstransfer.2009.09.024
  3. [3] Minea AA. Numerical studies on heat transfer enhancement and synergy analysis on few metal oxide water based nanofluids. International Journal of Heat and Mass Transfer 2015; 89:1207-15. https://doi.org/10.1016/j.ijheatmasstransfer.2015.06.039
  4. [4] Rea U, McKrell T, Hu LW, Buongiorno J. Laminar convective heat transfer and viscous pressure loss of alumina–water and zirconia–water nanofluids. International Journal of Heat and Mass Transfer 2009; 52(7-8):2042-8. https://doi.org/10.1016/j.ijheatmasstransfer.2008.10.025
  5. [5] Heris SZ, Etemad SG, Esfahany MN. Experimental investigation of oxide nanofluids laminar flow convective heat transfer. International communications in heat and mass transfer 2006; 33(4):529-35. https://doi.org/10.1016/j.icheatmasstransfer.2006.01.005
  6. [6] Yu W, France DM, Smith DS, Singh D, Timofeeva EV, Routbort JL. Heat transfer to a silicon carbide/water nanofluid. International Journal of Heat and Mass Transfer 2009; 52(15-16):3606-12. https://doi.org/10.1016/j.ijheatmasstransfer.2009.02.036
  7. [7] Yu L, Liu D. Study of the thermal effectiveness of laminar forced convection of nanofluids for liquid cooling applications. IEEE Transactions on Components, Packaging and Manufacturing Technology 2013; 3(10):1693-704. https://doi.org/10.1109/TCPMT.2013.2265261
  8. [8] Sarkar J. Performance of nanofluid-cooled shell and tube gas cooler in transcritical CO2 refrigeration systems. Applied Thermal Engineering 2011; 31(14-15):2541-8. https://doi.org/10.1016/j.applthermaleng. 2011.04.019

Details

Primary Language

English

Subjects

Engineering

Journal Section

Research Article

Authors

Md Insiat Islam Rabby * This is me
0000-0003-0431-6101
Malaysia

Farzad Hossaın This is me
0000-0001-8256-8553
Bangladesh

S. A. M. Shafwat Amın This is me
0000-0002-9807-6059
Bangladesh

A. K. M. Sadrul Islam This is me
0000-0002-9550-5081
Palestine

Publication Date

July 1, 2021

Submission Date

October 27, 2019

Acceptance Date

February 29, 2020

Published in Issue

Year 2021 Volume: 7 Number: 5

APA
Rabby, M. I. I., Hossaın, F., Amın, S. A. M. S., & Islam, A. K. M. S. (2021). Numerical simulation on performance evaluation among metal and oxide based nanofluids for power savings application of a circular tube. Journal of Thermal Engineering, 7(5), 1150-1162. https://doi.org/10.18186/thermal.977996
AMA
1.Rabby MII, Hossaın F, Amın SAMS, Islam AKMS. Numerical simulation on performance evaluation among metal and oxide based nanofluids for power savings application of a circular tube. Journal of Thermal Engineering. 2021;7(5):1150-1162. doi:10.18186/thermal.977996
Chicago
Rabby, Md Insiat Islam, Farzad Hossaın, S. A. M. Shafwat Amın, and A. K. M. Sadrul Islam. 2021. “Numerical Simulation on Performance Evaluation Among Metal and Oxide Based Nanofluids for Power Savings Application of a Circular Tube”. Journal of Thermal Engineering 7 (5): 1150-62. https://doi.org/10.18186/thermal.977996.
EndNote
Rabby MII, Hossaın F, Amın SAMS, Islam AKMS (July 1, 2021) Numerical simulation on performance evaluation among metal and oxide based nanofluids for power savings application of a circular tube. Journal of Thermal Engineering 7 5 1150–1162.
IEEE
[1]M. I. I. Rabby, F. Hossaın, S. A. M. S. Amın, and A. K. M. S. Islam, “Numerical simulation on performance evaluation among metal and oxide based nanofluids for power savings application of a circular tube”, Journal of Thermal Engineering, vol. 7, no. 5, pp. 1150–1162, July 2021, doi: 10.18186/thermal.977996.
ISNAD
Rabby, Md Insiat Islam - Hossaın, Farzad - Amın, S. A. M. Shafwat - Islam, A. K. M. Sadrul. “Numerical Simulation on Performance Evaluation Among Metal and Oxide Based Nanofluids for Power Savings Application of a Circular Tube”. Journal of Thermal Engineering 7/5 (July 1, 2021): 1150-1162. https://doi.org/10.18186/thermal.977996.
JAMA
1.Rabby MII, Hossaın F, Amın SAMS, Islam AKMS. Numerical simulation on performance evaluation among metal and oxide based nanofluids for power savings application of a circular tube. Journal of Thermal Engineering. 2021;7:1150–1162.
MLA
Rabby, Md Insiat Islam, et al. “Numerical Simulation on Performance Evaluation Among Metal and Oxide Based Nanofluids for Power Savings Application of a Circular Tube”. Journal of Thermal Engineering, vol. 7, no. 5, July 2021, pp. 1150-62, doi:10.18186/thermal.977996.
Vancouver
1.Md Insiat Islam Rabby, Farzad Hossaın, S. A. M. Shafwat Amın, A. K. M. Sadrul Islam. Numerical simulation on performance evaluation among metal and oxide based nanofluids for power savings application of a circular tube. Journal of Thermal Engineering. 2021 Jul. 1;7(5):1150-62. doi:10.18186/thermal.977996

Cited By

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