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Efficiency and Effectiveness Method versus ε-NTU Method with Application in Finned Flat Tube Compact Heat Exchanger with Water-Ethylene Glycol as Nanofluid Base of Iron Oxide Nanoparticles

DOI: 10.4236/msce.2022.102001, PP. 1-17

Keywords: Efficiency and Effectiveness Method, ε-NTU Method, Compact Heat Exchanger, Iron Oxid Nanoparticles, Nanofluid

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Abstract:

This work aims to establish comparisons between two models used for the performance of heat exchangers. The chosen system, in this case, consists of a heat exchanger used in automotive radiators flat finned tube type. Water and ethylene glycol compound as base fluid and volume fractions of iron oxide nanoparticles (Fe3O4) are used as a refrigerant. The quantities determined in this work are the nanofluid exit temperature, the air exit temperature, the absolute error between the models for heat transfer rate, and Effectiveness. The quantities that constitute parameters, independent variables, are the airflow, represented by the Reynolds number, and the iron oxide volume fraction. Ethylene Glycol 50% compound has slightly better thermal performance than pure water and reduces the reactive effect of water on the environment, increasing the average life of the equipment. The absolute relative error between the models is less than 20% and presents maximum values with the increase of the nanoparticle volume fraction and growth in the Reynolds number for the air.

References

[1]  Leong, K.Y., Saidur, R., Khairulmaini, M., Michael, Z. and Kamyar, A. (2012) Heat Transfer and Entropy Analysis of Three Different Types of Heat Exchangers Operated with Nanofluids. International Communications in Heat and Mass Transfer, 39, 838-843.
https://doi.org/10.1016/j.icheatmasstransfer.2012.04.003
[2]  Tiwari, R. and Maheshwari, G. (2017) Effectiveness and Efficiency Analysis of Parallel Flow and Counter Flow Heat Exchangers. International Journal of Application or Innovation in Engineering & Management, 6, 314-319.
[3]  Fakheri, A. (2007) Heat Exchanger Efficiency. Journal of Heat Transfer, 129, 1268-1276.
https://doi.org/10.1115/1.2739620
[4]  Selvam, C., Mohan, L.D. and Sivasankaran, H. (2017) Enhanced Heat Transfer Performance of an Automobile Radiator with Graphene-Based Suspensions. Applied Thermal Engineering, 123, 50-60.
https://doi.org/10.1016/j.applthermaleng.2017.05.076
[5]  Nogueira, E. (2020) Thermal Performance in Heat Exchangers by the Irreversibility, Effectiveness, and Efficiency Concepts Using Nanofluids. Journal of Engineering Sciences, 7, F1-F7.
https://doi.org/10.21272/jes.2020.7(2).f1
[6]  Hussein, A.M., Kadirgama, K., Sharma, K.V., Ramasamy, D. and Bakar, R. (2017) Heat Transfer Enhancement with Nanofluids for Automotive Cooling. In: Korada V., Hisham, B. and Hamid, N., Eds., Engineering Applications of Nanotechnology. Topics in Mining, Metallurgy, and Materials Engineering, Springer, Cham.
https://doi.org/10.1007/978-3-319-29761-3_3
[7]  Nogueira, E. (2020) The Effectiveness Method (ε-NTU) to Analyze the Thermal Performance of the Flat Tube Multi-Louvered Finned Radiator with Silver Nanoparticles Suspension in Ethylene Glycol. International Journal of Advanced Technology and Engineering Exploration, 7, 102-112.
https://doi.org/10.19101/IJATEE.2020.762040
[8]  Nogueira, E. (2020). Thermal-Hydraulic Performance of Graphene Nanoribbon and Silicon Carbide Nanoparticles in the Multi-Louvered Radiator for Cooling Diesel Engine. Journal of Engineering Sciences, 7, F22-F29.
https://doi.org/10.21272/jes.2020.7(1).f2
[9]  Kays, W.M. and London, A.L. (1984) Compact Heat Exchangers. MacGraw-Hill, New York.
[10]  Kakaç, S. (1991) Boilers, Evaporators, and Condensers. John Wiley & Sons, Hoboken.

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