Experimental and Numerical Investigation of Flow and Thermal Characteristics of Aluminum Block Exchanger Using Surface-Modified and Recycled Nanofluids
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Date
2023
Journal Title
Journal ISSN
Volume Title
Publisher
Emerald Group Publishing Ltd
Open Access Color
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Abstract
PurposeThe purpose of this study is to numerically and experimentally survey the thermal efficiency of a block-type heat exchanger operated in different working conditions by using pure water and two nanofluids as heat transfer fluids.Design/methodology/approachAn aluminum block-type heat exchanger integrated with Peltier thermoelectric element was designed and installed to operate in a cycle, and the thermal performance of the heat exchanger, heat transfer rate, Nusselt and heat transfer coefficient variations were examined at different bath water temperatures by using recycled nanofluids. New generation surface-modified Fe3O4@SiO2-mix-(CH2)(3)Cl@Imidazol/water nanofluid was used as heat transfer fluid in the cycle. In addition, CFD simulation was performed using ANSYS/Fluent to investigate the temperature distribution and fluid flow structure in the used heat exchanger.FindingsExperiments were carried out by using numerical and experimental methods. In the experiments, the operating conditions such as flow rate, volume fraction of the nanofluid and water bath temperature were changed to find the effect of each parameter on the thermal efficiency. The Reynolds number varied depending on the test conditions, which was calculated in the range of approximately 100 < Re < 350. In addition, Nusselt number and heat transfer coefficient of test fluids were very close to each other. For 0.4% nanofluid, the maximum h value was obtained as 3837.1, when the Reynolds number was measured as 314.4.Originality/valueIn the scientific articles published in the field of heat exchangers operated by nanofluids, little attention has been paid to the stability of the nanofluids and sedimentation of particles in the base fluids. In addition, in most cases, experiments were implemented using an electrical resistance as a heat source. In this research, stable surface-modified nanofluids were used as heat transfer fluids, and it was found that the Peltier thermoelectric can be used as heat sources with acceptable efficiency in flat-type heat exchangers and even non-circular channels.
Description
Muratçobanoğlu, Burak/0000-0003-0671-2861; Mandev, Emre/0000-0002-6791-4136; Muratçobanoğlu, Burak/0000-0003-0671-2861
Keywords
Computational Fluid Dynamics, Heat Transfer Enhancement, Heat Exchanger, Recycled Nanofluid
Fields of Science
Citation
WoS Q
Q1
Scopus Q
N/A
Source
International Journal of Numerical Methods for Heat & Fluid Flow
Volume
33
Issue
8
Start Page
2685
End Page
2709
