Numerical investigation of laminar forced convection heat transfer in rectangular channels with different block geometries using nano-fluids

This research investigates the laminar steady-forced convection heat transfer of a Cu-water nanofluid in a 2-D horizontal channel with different block geometries attached to the bottom wall. The block geometries assumed in this research are triangular and curve blocks. The governing equations associ...

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Main Authors: Foroutani Saeed, Rahbari Alireza
Format: Article
Language:English
Published: VINCA Institute of Nuclear Sciences 2017-01-01
Series:Thermal Science
Subjects:
Online Access:http://www.doiserbia.nb.rs/img/doi/0354-9836/2017/0354-98361500092F.pdf
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spelling doaj-f1fb1f76145744ada6321c455732d81b2021-01-02T02:19:45ZengVINCA Institute of Nuclear SciencesThermal Science0354-98362334-71632017-01-012152129213810.2298/TSCI150131092F0354-98361500092FNumerical investigation of laminar forced convection heat transfer in rectangular channels with different block geometries using nano-fluidsForoutani Saeed0Rahbari Alireza1Islamic Azad University, Department of Mechanical Engineering, Tehran Science and Research Branch, Damavand, IranShahid Rajaee Teacher Training University (SRTTU), Department of Mechanical Engineering, Tehran, IranThis research investigates the laminar steady-forced convection heat transfer of a Cu-water nanofluid in a 2-D horizontal channel with different block geometries attached to the bottom wall. The block geometries assumed in this research are triangular and curve blocks. The governing equations associated with the required boundary conditions are solved using finite volume method based on the SIMPLE technique and the effects of Reynolds number, nanofluid volume fraction, block geometry, and the numbers of blocks on the local and average Nusselt numbers are explored. The obtained results show that nanoparticles can effectively enhance the heat transfer in a channel. Furthermore, the local and average Nusselt number distribution is strongly dependent on the block geometry. As observed, the heat transfer augments with the increase in the Reynolds number and nanofluid volume fraction for both block geometries. It is also concluded that the average Nusselt number of the curve block is higher than that of the triangular block for different Reynolds numbers which declares the importance of the block geometry in the heat transfer enhancement.http://www.doiserbia.nb.rs/img/doi/0354-9836/2017/0354-98361500092F.pdfnumerical investigationlaminar flowheat transfer enhancementblock geometry nanofluid
collection DOAJ
language English
format Article
sources DOAJ
author Foroutani Saeed
Rahbari Alireza
spellingShingle Foroutani Saeed
Rahbari Alireza
Numerical investigation of laminar forced convection heat transfer in rectangular channels with different block geometries using nano-fluids
Thermal Science
numerical investigation
laminar flow
heat transfer enhancement
block geometry nanofluid
author_facet Foroutani Saeed
Rahbari Alireza
author_sort Foroutani Saeed
title Numerical investigation of laminar forced convection heat transfer in rectangular channels with different block geometries using nano-fluids
title_short Numerical investigation of laminar forced convection heat transfer in rectangular channels with different block geometries using nano-fluids
title_full Numerical investigation of laminar forced convection heat transfer in rectangular channels with different block geometries using nano-fluids
title_fullStr Numerical investigation of laminar forced convection heat transfer in rectangular channels with different block geometries using nano-fluids
title_full_unstemmed Numerical investigation of laminar forced convection heat transfer in rectangular channels with different block geometries using nano-fluids
title_sort numerical investigation of laminar forced convection heat transfer in rectangular channels with different block geometries using nano-fluids
publisher VINCA Institute of Nuclear Sciences
series Thermal Science
issn 0354-9836
2334-7163
publishDate 2017-01-01
description This research investigates the laminar steady-forced convection heat transfer of a Cu-water nanofluid in a 2-D horizontal channel with different block geometries attached to the bottom wall. The block geometries assumed in this research are triangular and curve blocks. The governing equations associated with the required boundary conditions are solved using finite volume method based on the SIMPLE technique and the effects of Reynolds number, nanofluid volume fraction, block geometry, and the numbers of blocks on the local and average Nusselt numbers are explored. The obtained results show that nanoparticles can effectively enhance the heat transfer in a channel. Furthermore, the local and average Nusselt number distribution is strongly dependent on the block geometry. As observed, the heat transfer augments with the increase in the Reynolds number and nanofluid volume fraction for both block geometries. It is also concluded that the average Nusselt number of the curve block is higher than that of the triangular block for different Reynolds numbers which declares the importance of the block geometry in the heat transfer enhancement.
topic numerical investigation
laminar flow
heat transfer enhancement
block geometry nanofluid
url http://www.doiserbia.nb.rs/img/doi/0354-9836/2017/0354-98361500092F.pdf
work_keys_str_mv AT foroutanisaeed numericalinvestigationoflaminarforcedconvectionheattransferinrectangularchannelswithdifferentblockgeometriesusingnanofluids
AT rahbarialireza numericalinvestigationoflaminarforcedconvectionheattransferinrectangularchannelswithdifferentblockgeometriesusingnanofluids
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