Effect of nanoparticle shape on the heat transfer and thermodynamic performance of a shell and tube heat exchanger

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Date

2013

Authors

M. M. Elias
M. Miqdad
Islam Mohammed Mahbubul
Rahman Saidur
Masoud Kamalisarvestani
M. R. Sohel
A. Hepbasli
Nasrudin Abd Rahim
Muhammad Afifi Amalina

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Volume Title

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Open Access Color

Green Open Access

Yes

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No
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Top 10%
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Top 10%
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Top 1%

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Abstract

Nanofluid is a heat transfer fluid that can improve the performance of heat exchanger systems. Different parameters such as particle size shape and volume concentration affect the performance of these systems. The objective of this paper is to study the effect of different nanoparticle shapes (such as cylindrical bricks blades platelets and spherical) on the performance of a shell and tube heat exchanger operating with nanofluid analytically. Boehmite alumina (γ-AlOOH) nanoparticles of different shapes were dispersed in a mixture of water/ethylene glycol as the nanofluid. The thermodynamic performance of the shell and tube heat exchanger that is used in a waste heat recovery system was analysed in terms of heat transfer rate and entropy generation. Established correlations were used to measure the thermal conductivity heat transfer coefficient and rate and entropy generation of nanofluid. The results show an increase in both the heat transfer and thermodynamic performance of the system. However among the five nanoparticle shapes cylindrical shape exhibited better heat transfer characteristics and heat transfer rate. On the other hand entropy generation for nanofluids containing cylindrical shaped nanoparticles was higher in comparison with the other nanoparticle shapes. However the increased percentage of entropy was below 1%. Therefore this greater entropy generation could be deemed negligible and cylindrical shaped nanoparticles are recommended to be utilized in heat exchanger systems working with nanofluids. © 2013 Elsevier Ltd. © 2013 Elsevier B.V. All rights reserved.

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Keywords

Entropy Generation, Heat Transfer Coefficient, Heat Transfer Rate, Nanofluids, Thermal Conductivity, Entropy Generation, Heat Transfer Characteristics, Heat Transfer Rate, Nanofluids, Shell And Tube Heat Exchangers, Thermodynamic Performance, Volume Concentration, Waste Heat Recovery Systems, Alumina, Entropy, Heat Exchangers, Heat Transfer Coefficients, Nanoparticles, Specific Heat, Thermal Conductivity, Thermal Conductivity Of Liquids, Thermodynamics, Tubes (components), Nanofluidics, Entropy generation, Heat transfer characteristics, Heat transfer rate, Nanofluids, Shell and tube heat exchangers, Thermodynamic performance, Volume concentration, Waste heat recovery systems, Alumina, Entropy, Heat exchangers, Heat transfer coefficients, Nanoparticles, Specific heat, Thermal conductivity, Thermal conductivity of liquids, Thermodynamics, Tubes (components), Nanofluidics

Fields of Science

0211 other engineering and technologies, 0202 electrical engineering, electronic engineering, information engineering, 02 engineering and technology

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OpenCitations Citation Count
143

Source

International Communications in Heat and Mass Transfer

Volume

44

Issue

Start Page

93

End Page

99
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CrossRef : 145

Scopus : 160

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Mendeley Readers : 126

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