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APPLICATION OF NANOTECHNOLOGY TO IMPROVE THE PERFORMANCE OF TRACTOR RADIATOR USING CU-WATER NANOFLUID

Year 2018, Volume: 4 Issue: 4 - Special Issue 8: International Technology Congress 2017, Pune, India, 2188 - 2200, 10.04.2018
https://doi.org/10.18186/journal-of-thermal-engineering.434036

Abstract

This paper gives the performance improvement of tractor radiator by
Cu/water nanofluid through the mechanism of nanotechnology. It was found that
the use of the nanofluid in heat transfer field can play a crucial role in
increasing the efficiency of equipment.
Miniaturization and increased operating speeds of heat exchangers
warranted the need for new and innovative cooling concepts for better
performance. The nano materials and its suspension in fluids as particles have
been the subject of intensive study worldwide. Tractor Engine cooling is an
important factor
for their performance
in the intended application. Here the tractor engine radiator cooling is
enhanced by nanofluid mechanism of heat transfer for its improved performance
in agricultural work. The experimental and numerical investigation for the
improved heat transfer characteristics of a radiator using Cu/water nanofluid
for 0.025, 0.05 and 0.075% volume fraction is done with inlet temp of 50 - 60°C under the turbulent flow
regime (8000 ≤ Re ≤ 25000). The overall heat transfer coefficient decreases
with increase in nanofluid inlet temperature of 50 - 60°C. The experimental results
when compared with numerical shows enhanced heat transfer coefficient.
The results also
proved that nanofluid is better heat transfer fluid than the base fluid water. Experimental
results emphasize the enhancement of heat transfer due to the nanoparticles
presence in the fluid. Heat transfer coefficient increases by increasing the
concentration of nanoparticles in nanofluid. The nanofluids are projected as alternative cooling fluid in heat
exchangers through its nano mechanism. Further researches are required to study
the effect of nanotechnology to enhance the heat exchanger performance over the
next several coming years

References

  • [1] Choi, S. U., & Eastman, J. A. (1995). Enhancing thermal conductivity of fluids with nanoparticles (No. ANL/MSD/CP--84938; CONF-951135--29). Argonne National Lab., IL (United States).
  • [2] Abu-Nada, E., & Chamkha, A. J. (2010). Effect of nanofluid variable properties on natural convection in enclosures filled with a CuO–EG–water nanofluid. International Journal of Thermal Sciences, 49(12), 2339-2352.
  • [3] Chein, R., & Chuang, J. (2007). Experimental microchannel heat sink performance studies using nanofluids. International Journal of Thermal Sciences, 46(1), 57-66.
  • [4] Brinkman, H. C. (1952). The viscosity of concentrated suspensions and solutions. The Journal of Chemical Physics, 20(4), 571-571.
  • [5] Xuan, Y., & Roetzel, W. (2000). Conceptions for heat transfer correlation of nanofluids. International Journal of heat and Mass transfer, 43(19), 3701-3707.
  • [6] Hamilton, R. L., & Crosser, O. K. (1962). Thermal conductivity of heterogeneous two-component systems. Industrial & Engineering chemistry fundamentals, 1(3), 187-191.
  • [7] Duangthongsuk, W., & Wongwises, S. (2008). Effect of thermophysical properties models on the predicting of the convective heat transfer coefficient for low concentration nanofluid. International Communications in Heat and Mass Transfer, 35(10), 1320-1326..
  • [8] Duangthongsuk, W., & Wongwises, S. (2010). 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, 53(1-3), 334-344.
  • [9] Hwang, K. S., Jang, S. P., & Choi, S. U. (2009). Flow and convective heat transfer characteristics of water-based Al2O3 nanofluids in fully developed laminar flow regime. International journal of heat and mass transfer, 52(1-2), 193-199.
  • [10] Li, Q., & Xuan, Y. (2002). Convective heat transfer and flow characteristics of Cu-water nanofluid. Science in China Series E: Technolgical Science, 45(4), 408-416.
  • [11] Xuan, Y., & Li, Q. (2003). Investigation on convective heat transfer and flow features of nanofluids. Journal of Heat transfer, 125(1), 151-155.
  • [12] Waterloo Maple Inc. (2008). Designing a more effective car radiator. Retrieved December 2, 2011, from http:// www.maplesoft.com/view.maspx? SF=6403/Radiator.pdf.
  • [13] Leong, K. Y., Saidur, R., Kazi, S. N., & Mamun, A. H. (2010). Performance investigation of an automotive car radiator operated with nanofluid-based coolants (nanofluid as a coolant in a radiator). Applied Thermal Engineering, 30(17-18), 2685-2692.
  • [14] Wong, K. V. and Leon, O. D. (2010). Applications of nanofluids: Current and future. Advances in Mechanical Engineering, 2010, 1-11.
  • [15] Choi, S. (2006). Nanofluids for improved efficiency in cooling systems. Retrieved December 2, 2011, from http://www1.eere.energy.gov/ vehicles and fuels /pdfs/ hvso_2006/ 13_choi.pdf.
  • [16] Mare, T., Halelfadl, S., Sow, O., Estelle, P., Duret, S. and Bazantay, F. (2011). Comparison of the thermal performances of two nanofluids at low temperature in a plate heat exchanger. Experimental Thermal and Fluid Science, 35, 1535–1543.
  • [17] Wang, X. and Mujumdar A. S. (2007). Heat transfer characteristics of nanofluids: A review. International Journal of Thermal Sciences, 46, 1–19.
  • [18] Xuan, Y. and Li, Q. (2003). Investigation on Convective Heat Transfer and Flow Features of Nanofluids. Journal of Heat Transfer, 125(1), 151-155.
  • [19] Razi, P., Akhavan-Behabadi, M. A. and Saeedinia, M. (2011). Pressure drop and thermal characteristics of CuO–base oil nanofluid laminar flow in flattened tubes under constant heat flux. International Communnication in Heat and Mass Transfer, 38(7), 964-971.
  • [20] Calvin, H. L. and Peterson G. P. (2010). Experimental studies of natural convection heat transfer of Al2O3/DI water nanoparticle suspensions (Nanofluids). Advanced in Mechanical engineering, 2010, 1535-1543.
  • [21] W. Yu, D. M. France, J. L. Routbort and S. U. S. Choi (2008). Heat Transfer Eng. 29, 432.
  • [22] D. Singh, J. Toutbourt, G. Chen et al. (2006). Annual report Argonee National lab.
  • [23] V. Vasu, K. Ramakrishna and A. C. S. kumar (2008). Int. J. Nano Technol. Appl. 2, 75.
  • [24] S. T. Zeng, C. Lin and K. Huang, Acta. Mechanica. 179, 11 (2005). doi:10.1007/s00707- 005-0248-9
  • [25] S.V. Ravikanth, K. D. Debendra and K. N. Praveen, Int. J. Heat Fluid Flow 31, 613 (2010). doi:10.1016/j.ijheat fluidflow.2010.02.016
  • [26] Pak, B. C., & Cho, Y. I. (1998). Hydrodynamic and heat transfer study of dispersed fluids with submicron metallic oxide particles. Experimental Heat Transfer an International Journal, 11(2), 151-170. [27] Xuan, Y., & Roetzel, W. (2000). Conceptions for heat transfer correlation of nanofluids. International Journal of heat and Mass transfer, 43(19), 3701-3707.
  • [28] Wang, X., Xu, X., & S. Choi, S. U. (1999). Thermal conductivity of nanoparticle-fluid mixture. Journal of thermophysics and heat transfer, 13(4), 474-480.
  • [29] Duangthongsuk, W., & Wongwises, S. (2008). Effect of thermophysical properties models on the predicting of the convective heat transfer coefficient for low concentration nanofluid. International Communications in Heat and Mass Transfer, 35(10), 1320-1326.
  • [30] July, E. S. D. U. (1991). Effectiveness-NTU Relationships for the Design and Performance Evaluation of Two-Stream Heat Exchangers. Engineering Science Data Unit, 167(86018), 92-107.
  • [31] Vithayasai, S., Kiatsiriroat, T., & Nuntaphan, A. (2006). Effect of electric field on heat transfer performance of automobile radiator at low frontal air velocity. Applied thermal engineering, 26(17-18), 2073-2078.
  • [32] Dittus, F. W., & Boelter, L. M. K. (1985). Heat transfer in automobile radiators of the tubular type. International Communications in Heat and Mass Transfer, 12(1), 3-22.
  • [33] Ding, Y., & Wen, D. (2005). Particle migration in a flow of nanoparticle suspensions. Powder Technology, 149(2-3), 84-92.
  • [34] Ravisankar, R., Venkatachalapathy, V. S. K., & Alagumurthy, N. (2017). Thermal Performance Improvement of Tractor Radiator Using CuO/Water Nanofluid. Heat Transfer—Asian Research, 46(1), 61-74.
Year 2018, Volume: 4 Issue: 4 - Special Issue 8: International Technology Congress 2017, Pune, India, 2188 - 2200, 10.04.2018
https://doi.org/10.18186/journal-of-thermal-engineering.434036

Abstract

References

  • [1] Choi, S. U., & Eastman, J. A. (1995). Enhancing thermal conductivity of fluids with nanoparticles (No. ANL/MSD/CP--84938; CONF-951135--29). Argonne National Lab., IL (United States).
  • [2] Abu-Nada, E., & Chamkha, A. J. (2010). Effect of nanofluid variable properties on natural convection in enclosures filled with a CuO–EG–water nanofluid. International Journal of Thermal Sciences, 49(12), 2339-2352.
  • [3] Chein, R., & Chuang, J. (2007). Experimental microchannel heat sink performance studies using nanofluids. International Journal of Thermal Sciences, 46(1), 57-66.
  • [4] Brinkman, H. C. (1952). The viscosity of concentrated suspensions and solutions. The Journal of Chemical Physics, 20(4), 571-571.
  • [5] Xuan, Y., & Roetzel, W. (2000). Conceptions for heat transfer correlation of nanofluids. International Journal of heat and Mass transfer, 43(19), 3701-3707.
  • [6] Hamilton, R. L., & Crosser, O. K. (1962). Thermal conductivity of heterogeneous two-component systems. Industrial & Engineering chemistry fundamentals, 1(3), 187-191.
  • [7] Duangthongsuk, W., & Wongwises, S. (2008). Effect of thermophysical properties models on the predicting of the convective heat transfer coefficient for low concentration nanofluid. International Communications in Heat and Mass Transfer, 35(10), 1320-1326..
  • [8] Duangthongsuk, W., & Wongwises, S. (2010). 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, 53(1-3), 334-344.
  • [9] Hwang, K. S., Jang, S. P., & Choi, S. U. (2009). Flow and convective heat transfer characteristics of water-based Al2O3 nanofluids in fully developed laminar flow regime. International journal of heat and mass transfer, 52(1-2), 193-199.
  • [10] Li, Q., & Xuan, Y. (2002). Convective heat transfer and flow characteristics of Cu-water nanofluid. Science in China Series E: Technolgical Science, 45(4), 408-416.
  • [11] Xuan, Y., & Li, Q. (2003). Investigation on convective heat transfer and flow features of nanofluids. Journal of Heat transfer, 125(1), 151-155.
  • [12] Waterloo Maple Inc. (2008). Designing a more effective car radiator. Retrieved December 2, 2011, from http:// www.maplesoft.com/view.maspx? SF=6403/Radiator.pdf.
  • [13] Leong, K. Y., Saidur, R., Kazi, S. N., & Mamun, A. H. (2010). Performance investigation of an automotive car radiator operated with nanofluid-based coolants (nanofluid as a coolant in a radiator). Applied Thermal Engineering, 30(17-18), 2685-2692.
  • [14] Wong, K. V. and Leon, O. D. (2010). Applications of nanofluids: Current and future. Advances in Mechanical Engineering, 2010, 1-11.
  • [15] Choi, S. (2006). Nanofluids for improved efficiency in cooling systems. Retrieved December 2, 2011, from http://www1.eere.energy.gov/ vehicles and fuels /pdfs/ hvso_2006/ 13_choi.pdf.
  • [16] Mare, T., Halelfadl, S., Sow, O., Estelle, P., Duret, S. and Bazantay, F. (2011). Comparison of the thermal performances of two nanofluids at low temperature in a plate heat exchanger. Experimental Thermal and Fluid Science, 35, 1535–1543.
  • [17] Wang, X. and Mujumdar A. S. (2007). Heat transfer characteristics of nanofluids: A review. International Journal of Thermal Sciences, 46, 1–19.
  • [18] Xuan, Y. and Li, Q. (2003). Investigation on Convective Heat Transfer and Flow Features of Nanofluids. Journal of Heat Transfer, 125(1), 151-155.
  • [19] Razi, P., Akhavan-Behabadi, M. A. and Saeedinia, M. (2011). Pressure drop and thermal characteristics of CuO–base oil nanofluid laminar flow in flattened tubes under constant heat flux. International Communnication in Heat and Mass Transfer, 38(7), 964-971.
  • [20] Calvin, H. L. and Peterson G. P. (2010). Experimental studies of natural convection heat transfer of Al2O3/DI water nanoparticle suspensions (Nanofluids). Advanced in Mechanical engineering, 2010, 1535-1543.
  • [21] W. Yu, D. M. France, J. L. Routbort and S. U. S. Choi (2008). Heat Transfer Eng. 29, 432.
  • [22] D. Singh, J. Toutbourt, G. Chen et al. (2006). Annual report Argonee National lab.
  • [23] V. Vasu, K. Ramakrishna and A. C. S. kumar (2008). Int. J. Nano Technol. Appl. 2, 75.
  • [24] S. T. Zeng, C. Lin and K. Huang, Acta. Mechanica. 179, 11 (2005). doi:10.1007/s00707- 005-0248-9
  • [25] S.V. Ravikanth, K. D. Debendra and K. N. Praveen, Int. J. Heat Fluid Flow 31, 613 (2010). doi:10.1016/j.ijheat fluidflow.2010.02.016
  • [26] Pak, B. C., & Cho, Y. I. (1998). Hydrodynamic and heat transfer study of dispersed fluids with submicron metallic oxide particles. Experimental Heat Transfer an International Journal, 11(2), 151-170. [27] Xuan, Y., & Roetzel, W. (2000). Conceptions for heat transfer correlation of nanofluids. International Journal of heat and Mass transfer, 43(19), 3701-3707.
  • [28] Wang, X., Xu, X., & S. Choi, S. U. (1999). Thermal conductivity of nanoparticle-fluid mixture. Journal of thermophysics and heat transfer, 13(4), 474-480.
  • [29] Duangthongsuk, W., & Wongwises, S. (2008). Effect of thermophysical properties models on the predicting of the convective heat transfer coefficient for low concentration nanofluid. International Communications in Heat and Mass Transfer, 35(10), 1320-1326.
  • [30] July, E. S. D. U. (1991). Effectiveness-NTU Relationships for the Design and Performance Evaluation of Two-Stream Heat Exchangers. Engineering Science Data Unit, 167(86018), 92-107.
  • [31] Vithayasai, S., Kiatsiriroat, T., & Nuntaphan, A. (2006). Effect of electric field on heat transfer performance of automobile radiator at low frontal air velocity. Applied thermal engineering, 26(17-18), 2073-2078.
  • [32] Dittus, F. W., & Boelter, L. M. K. (1985). Heat transfer in automobile radiators of the tubular type. International Communications in Heat and Mass Transfer, 12(1), 3-22.
  • [33] Ding, Y., & Wen, D. (2005). Particle migration in a flow of nanoparticle suspensions. Powder Technology, 149(2-3), 84-92.
  • [34] Ravisankar, R., Venkatachalapathy, V. S. K., & Alagumurthy, N. (2017). Thermal Performance Improvement of Tractor Radiator Using CuO/Water Nanofluid. Heat Transfer—Asian Research, 46(1), 61-74.
There are 33 citations in total.

Details

Primary Language English
Journal Section Articles
Authors

R. Ravisankar This is me

Publication Date April 10, 2018
Submission Date September 3, 2017
Published in Issue Year 2018 Volume: 4 Issue: 4 - Special Issue 8: International Technology Congress 2017, Pune, India

Cite

APA Ravisankar, R. (2018). APPLICATION OF NANOTECHNOLOGY TO IMPROVE THE PERFORMANCE OF TRACTOR RADIATOR USING CU-WATER NANOFLUID. Journal of Thermal Engineering, 4(4), 2188-2200. https://doi.org/10.18186/journal-of-thermal-engineering.434036
AMA Ravisankar R. APPLICATION OF NANOTECHNOLOGY TO IMPROVE THE PERFORMANCE OF TRACTOR RADIATOR USING CU-WATER NANOFLUID. Journal of Thermal Engineering. April 2018;4(4):2188-2200. doi:10.18186/journal-of-thermal-engineering.434036
Chicago Ravisankar, R. “APPLICATION OF NANOTECHNOLOGY TO IMPROVE THE PERFORMANCE OF TRACTOR RADIATOR USING CU-WATER NANOFLUID”. Journal of Thermal Engineering 4, no. 4 (April 2018): 2188-2200. https://doi.org/10.18186/journal-of-thermal-engineering.434036.
EndNote Ravisankar R (April 1, 2018) APPLICATION OF NANOTECHNOLOGY TO IMPROVE THE PERFORMANCE OF TRACTOR RADIATOR USING CU-WATER NANOFLUID. Journal of Thermal Engineering 4 4 2188–2200.
IEEE R. Ravisankar, “APPLICATION OF NANOTECHNOLOGY TO IMPROVE THE PERFORMANCE OF TRACTOR RADIATOR USING CU-WATER NANOFLUID”, Journal of Thermal Engineering, vol. 4, no. 4, pp. 2188–2200, 2018, doi: 10.18186/journal-of-thermal-engineering.434036.
ISNAD Ravisankar, R. “APPLICATION OF NANOTECHNOLOGY TO IMPROVE THE PERFORMANCE OF TRACTOR RADIATOR USING CU-WATER NANOFLUID”. Journal of Thermal Engineering 4/4 (April 2018), 2188-2200. https://doi.org/10.18186/journal-of-thermal-engineering.434036.
JAMA Ravisankar R. APPLICATION OF NANOTECHNOLOGY TO IMPROVE THE PERFORMANCE OF TRACTOR RADIATOR USING CU-WATER NANOFLUID. Journal of Thermal Engineering. 2018;4:2188–2200.
MLA Ravisankar, R. “APPLICATION OF NANOTECHNOLOGY TO IMPROVE THE PERFORMANCE OF TRACTOR RADIATOR USING CU-WATER NANOFLUID”. Journal of Thermal Engineering, vol. 4, no. 4, 2018, pp. 2188-00, doi:10.18186/journal-of-thermal-engineering.434036.
Vancouver Ravisankar R. APPLICATION OF NANOTECHNOLOGY TO IMPROVE THE PERFORMANCE OF TRACTOR RADIATOR USING CU-WATER NANOFLUID. Journal of Thermal Engineering. 2018;4(4):2188-200.

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