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Enhancing performance of polymer-based microchannel heat exchanger with nanofluid A computational fluid dynamics-artificial neural network approach
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Metadata
Document Title
Enhancing performance of polymer-based microchannel heat exchanger with nanofluid A computational fluid dynamics-artificial neural network approach
Author
Kamsuwan C. Wang X. Seng L.P. Xian C.K. Piemjaiswang R. Piumsomboon P. Manatura K. Kaewbumrung M. Pratumwal Y. Otarawanna S. Chalermsinsuwan B.
Affiliations
Fuels Research Center Department of Chemical Technology Faculty of Science Chulalongkorn University Bangkok 10330 Thailand; School of Engineering The Australian National University Canberra ACT 2601 Australia; Department of Mechanical Engineering Faculty of Engineering National University of Singapore 9 Engineering Drive 1117576 Singapore; Environmental Research Institute Chulalongkorn University Bangkok 10330 Thailand; Center of Excellence on Petrochemical and Materials Technology Chulalongkorn University Bangkok 10330 Thailand; Department of Mechanical Engineering Faculty of Engineering at Kamphaeng Saen Kasetsart University Kamphaeng Saen Campus Nakhon Pathom 73140 Thailand; Department of Mechanical Engineering Faculty of Engineering and Architecture Rajamangala University of Technology Suvarnabhumi (Huntra Campus) Phranakhon Si Ayutthaya13000 Thailand; National Metal and Materials Technology Center National Science and Technology Development Agency Pathum Thani12120 Thailand; Advanced Computational Fluid Dynamics Research Unit Chulalongkorn University Bangkok 10330 Thailand
Type
Article
Source Title
South African Journal of Chemical Engineering
ISSN
10269185
Year
2023
Volume
46
Page
361-375
Open Access
All Open Access Gold
Publisher
Elsevier B.V.
DOI
10.1016/j.sajce.2023.09.001
Abstract
Polymer-based heat exchangers can offer a promising solution for environmental sustainability due to their low energy consumption. The incorporation of microchannels and nanofluids further enhances the heat transfer performance of these heat exchangersIn this study a polymer-based microchannel heat exchanger combined with nanofluid is simulated through the integration of an artificial neural network predictive model and a three-dimensional computational fluid dynamics model. This study unveils an advanced calculation that integrates artificial intelligence and readily-available computational software provided as the advanced calculation system. A statistical mathematics response surface method which data is used for correlating the calculation model is applied to obtain the design parameters between operating conditions and for optimal performance. The optimized results reveal that polymer-based microchannel heat exchanger combined with nanofluid is a promising innovation. The heat transfer improvement achieved a 12 % increase in the overall heat transfer coefficient by using TiO2/Water compared to Water. Moreover a 1.03 performance index is obtained when CuO/Water nanofluid is used a 66 horizontal parallel connecting of the polymer-based microchannel heat exchanger shows that the equipment can afford the same heat transfer performance of the metal-based microchannel heat exchanger in TiO2/Water nanofluid usage and implying a balance between heat transfer enhancement and energy consumption. ? 2023 The Author(s)
Industrial Classification
Knowledge Taxonomy Level 1
Knowledge Taxonomy Level 2
Knowledge Taxonomy Level 3
License
CC BY-NC-ND
Rights
Authors
Publication Source
WOS