Computational analysis of hybrid nanofluid enhanced heat transfer in cross flow micro heat exchanger with rectangular wavy channels
The current paper provides a three-dimensional computational analysis of hybrid nanofluid enhanced heat transfer in cross flow micro heat exchanger with rectangular wavy channels. This micro heat exchanger is assumed to be well insulated from its surrounding and made respectively of five top and fiv...
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2021-04-01
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doaj-b235d90acdba4ec3b5b18db81a5424162021-03-05T04:28:13ZengElsevierCase Studies in Thermal Engineering2214-157X2021-04-0124100822Computational analysis of hybrid nanofluid enhanced heat transfer in cross flow micro heat exchanger with rectangular wavy channelsKaouther Ghachem0Walid Aich1Lioua Kolsi2Department of Industrial Engineering and Systems, College of Engineering, Princess Nourah Bint Abdulrahman University, Riyadh, Saudi ArabiaMechanical Engineering Department, College of Engineering, University of Ha'il, Ha'il City, Saudi ArabiaMechanical Engineering Department, College of Engineering, University of Ha'il, Ha'il City, Saudi Arabia; Corresponding author.The current paper provides a three-dimensional computational analysis of hybrid nanofluid enhanced heat transfer in cross flow micro heat exchanger with rectangular wavy channels. This micro heat exchanger is assumed to be well insulated from its surrounding and made respectively of five top and five bottom channels. The hot and cold nanofluids flow through the upper and lower cross channels, respectively. This analytical investigation has been carried out using the finite element method with a wide range of governing parameters such as the flow velocity (5 mm/s ≤ u ≤ 100 mm/s), the wave number (0 ≤ N ≤ 20) and the nanoparticles concentration (0 ≤ ϕ ≤ 0.05). It was concluded that an adequate choice of flow velocity and nanoparticles volume fraction can minimize the heat exchanger size and the addition of nanoparticles has significant effect only with high velocities (u ≥ 50 mm/s). Moreover, it was revealed that a trade-off between the relevant controlling parameters is required to ensure an optimal efficiency. The highest heat exchanger efficiency was achieved with a wave number N = 8, a nanoparticles concentration ϕ = 0.05 and an inlet velocity u = 50 mm/s.http://www.sciencedirect.com/science/article/pii/S2214157X20305645Cross flowMicro heat exchangerRectangular wavy channelHybrid nanofluid |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Kaouther Ghachem Walid Aich Lioua Kolsi |
spellingShingle |
Kaouther Ghachem Walid Aich Lioua Kolsi Computational analysis of hybrid nanofluid enhanced heat transfer in cross flow micro heat exchanger with rectangular wavy channels Case Studies in Thermal Engineering Cross flow Micro heat exchanger Rectangular wavy channel Hybrid nanofluid |
author_facet |
Kaouther Ghachem Walid Aich Lioua Kolsi |
author_sort |
Kaouther Ghachem |
title |
Computational analysis of hybrid nanofluid enhanced heat transfer in cross flow micro heat exchanger with rectangular wavy channels |
title_short |
Computational analysis of hybrid nanofluid enhanced heat transfer in cross flow micro heat exchanger with rectangular wavy channels |
title_full |
Computational analysis of hybrid nanofluid enhanced heat transfer in cross flow micro heat exchanger with rectangular wavy channels |
title_fullStr |
Computational analysis of hybrid nanofluid enhanced heat transfer in cross flow micro heat exchanger with rectangular wavy channels |
title_full_unstemmed |
Computational analysis of hybrid nanofluid enhanced heat transfer in cross flow micro heat exchanger with rectangular wavy channels |
title_sort |
computational analysis of hybrid nanofluid enhanced heat transfer in cross flow micro heat exchanger with rectangular wavy channels |
publisher |
Elsevier |
series |
Case Studies in Thermal Engineering |
issn |
2214-157X |
publishDate |
2021-04-01 |
description |
The current paper provides a three-dimensional computational analysis of hybrid nanofluid enhanced heat transfer in cross flow micro heat exchanger with rectangular wavy channels. This micro heat exchanger is assumed to be well insulated from its surrounding and made respectively of five top and five bottom channels. The hot and cold nanofluids flow through the upper and lower cross channels, respectively. This analytical investigation has been carried out using the finite element method with a wide range of governing parameters such as the flow velocity (5 mm/s ≤ u ≤ 100 mm/s), the wave number (0 ≤ N ≤ 20) and the nanoparticles concentration (0 ≤ ϕ ≤ 0.05). It was concluded that an adequate choice of flow velocity and nanoparticles volume fraction can minimize the heat exchanger size and the addition of nanoparticles has significant effect only with high velocities (u ≥ 50 mm/s). Moreover, it was revealed that a trade-off between the relevant controlling parameters is required to ensure an optimal efficiency. The highest heat exchanger efficiency was achieved with a wave number N = 8, a nanoparticles concentration ϕ = 0.05 and an inlet velocity u = 50 mm/s. |
topic |
Cross flow Micro heat exchanger Rectangular wavy channel Hybrid nanofluid |
url |
http://www.sciencedirect.com/science/article/pii/S2214157X20305645 |
work_keys_str_mv |
AT kaoutherghachem computationalanalysisofhybridnanofluidenhancedheattransferincrossflowmicroheatexchangerwithrectangularwavychannels AT walidaich computationalanalysisofhybridnanofluidenhancedheattransferincrossflowmicroheatexchangerwithrectangularwavychannels AT liouakolsi computationalanalysisofhybridnanofluidenhancedheattransferincrossflowmicroheatexchangerwithrectangularwavychannels |
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1724230940419424256 |