Fully Developed Opposing Mixed Convection Flow in the Inclined Channel Filled with a Hybrid Nanofluid

This paper studies the convective heat transfer of a hybrid nanofluid in the inclined channel, whose walls are both heated by the uniform heat flux. The governing ordinary differential equations are made nondimensional and solved analytically, in which explicit distributions of velocity, temperature...

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Main Authors: Xiangcheng You, Shiyuan Li
Format: Article
Language:English
Published: MDPI AG 2021-04-01
Series:Nanomaterials
Subjects:
Online Access:https://www.mdpi.com/2079-4991/11/5/1107
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spelling doaj-10ee93ae80b841b88cf0eb341de07d7c2021-04-25T23:00:23ZengMDPI AGNanomaterials2079-49912021-04-01111107110710.3390/nano11051107Fully Developed Opposing Mixed Convection Flow in the Inclined Channel Filled with a Hybrid NanofluidXiangcheng You0Shiyuan Li1College of Petroleum Engineering, China University of Petroleum-Beijing, Beijing 102249, ChinaCollege of Petroleum Engineering, China University of Petroleum-Beijing, Beijing 102249, ChinaThis paper studies the convective heat transfer of a hybrid nanofluid in the inclined channel, whose walls are both heated by the uniform heat flux. The governing ordinary differential equations are made nondimensional and solved analytically, in which explicit distributions of velocity, temperature and pressure are obtained. The effects of flow reversal, wall skin friction and Nusselt number with the hybrid nanofluid depend on the nanoparticle volume fractions and pressure parameters. The obtained results indicate that the nanoparticle volume fractions play a key role in delaying the occurrence of the flow reversal. The hybrid nanofluids hold more delayed range than conventional nanofluids, which is about 2.5 times that of nanofluids. The calculations have been compared with the base fluid, nanofluid and two kinds of hybrid models (type II and type III). The hybrid model of type III is useful and simplified in that it omits the nonlinear terms due to the interaction of different nanoparticle volumetric fractions, with the relative error less than 3%. More results are discussed in the results section below.https://www.mdpi.com/2079-4991/11/5/1107hybrid nanofluidmixed convectioninclined channelflow reversal
collection DOAJ
language English
format Article
sources DOAJ
author Xiangcheng You
Shiyuan Li
spellingShingle Xiangcheng You
Shiyuan Li
Fully Developed Opposing Mixed Convection Flow in the Inclined Channel Filled with a Hybrid Nanofluid
Nanomaterials
hybrid nanofluid
mixed convection
inclined channel
flow reversal
author_facet Xiangcheng You
Shiyuan Li
author_sort Xiangcheng You
title Fully Developed Opposing Mixed Convection Flow in the Inclined Channel Filled with a Hybrid Nanofluid
title_short Fully Developed Opposing Mixed Convection Flow in the Inclined Channel Filled with a Hybrid Nanofluid
title_full Fully Developed Opposing Mixed Convection Flow in the Inclined Channel Filled with a Hybrid Nanofluid
title_fullStr Fully Developed Opposing Mixed Convection Flow in the Inclined Channel Filled with a Hybrid Nanofluid
title_full_unstemmed Fully Developed Opposing Mixed Convection Flow in the Inclined Channel Filled with a Hybrid Nanofluid
title_sort fully developed opposing mixed convection flow in the inclined channel filled with a hybrid nanofluid
publisher MDPI AG
series Nanomaterials
issn 2079-4991
publishDate 2021-04-01
description This paper studies the convective heat transfer of a hybrid nanofluid in the inclined channel, whose walls are both heated by the uniform heat flux. The governing ordinary differential equations are made nondimensional and solved analytically, in which explicit distributions of velocity, temperature and pressure are obtained. The effects of flow reversal, wall skin friction and Nusselt number with the hybrid nanofluid depend on the nanoparticle volume fractions and pressure parameters. The obtained results indicate that the nanoparticle volume fractions play a key role in delaying the occurrence of the flow reversal. The hybrid nanofluids hold more delayed range than conventional nanofluids, which is about 2.5 times that of nanofluids. The calculations have been compared with the base fluid, nanofluid and two kinds of hybrid models (type II and type III). The hybrid model of type III is useful and simplified in that it omits the nonlinear terms due to the interaction of different nanoparticle volumetric fractions, with the relative error less than 3%. More results are discussed in the results section below.
topic hybrid nanofluid
mixed convection
inclined channel
flow reversal
url https://www.mdpi.com/2079-4991/11/5/1107
work_keys_str_mv AT xiangchengyou fullydevelopedopposingmixedconvectionflowintheinclinedchannelfilledwithahybridnanofluid
AT shiyuanli fullydevelopedopposingmixedconvectionflowintheinclinedchannelfilledwithahybridnanofluid
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