Three-dimensional bioconvection nanofluid flow from a bi-axial stretching sheet with anisotropic slip

A theoretical study is presented for three-dimensional flow of bioconvection nanofluids containing gyrotactic micro-organisms over a bi-axial stretching sheet. The effects of anisotropic slip, thermal jump and mass slip are considered in the mathematical model. Suitable similarity transformations ar...

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Main Authors: Nur Ardiana Amirsom,, Uddin, M.J., Md. Faisal Md Basir,, A.I.M Ismail,, O. Anwar Bég,, Ali Kadir,
Format: Article
Language:English
Published: Penerbit Universiti Kebangsaan Malaysia 2019
Online Access:http://journalarticle.ukm.my/13636/1/23%20Nur%20Ardiana%20Amirsom.pdf
http://journalarticle.ukm.my/13636/
http://www.ukm.my/jsm/malay_journals/jilid48bil5_2019/KandunganJilid48Bil5_2019.html
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spelling my-ukm.journal.136362019-11-10T03:12:58Z http://journalarticle.ukm.my/13636/ Three-dimensional bioconvection nanofluid flow from a bi-axial stretching sheet with anisotropic slip Nur Ardiana Amirsom, Uddin, M.J. Md. Faisal Md Basir, A.I.M Ismail, O. Anwar Bég, Ali Kadir, A theoretical study is presented for three-dimensional flow of bioconvection nanofluids containing gyrotactic micro-organisms over a bi-axial stretching sheet. The effects of anisotropic slip, thermal jump and mass slip are considered in the mathematical model. Suitable similarity transformations are used to reduce the partial differential equation system into a nonlinear ordinary differential system. The transformed nonlinear ordinary differential equations with appropriate transformed boundary conditions are solved numerically with the bvp4c procedure in the symbolic software, MATLAB. The mathematical computations showed that an increase in Brownian motion parameter corresponds to a stronger thermophoretic force which encourages transport of nanoparticles from the hot bi-axial sheet to the quiescent fluid. This increases the nanoparticle volume fraction boundary layer. Fluid temperature and thermal boundary layer thickness are decreased with increasing stretching rate ratio of the bi-axial sheet. The present simulation is of relevance in the fabrication of bio-nanomaterials and thermally-enhanced media for bio-inspired fuel cells. Penerbit Universiti Kebangsaan Malaysia 2019-05 Article PeerReviewed application/pdf en http://journalarticle.ukm.my/13636/1/23%20Nur%20Ardiana%20Amirsom.pdf Nur Ardiana Amirsom, and Uddin, M.J. and Md. Faisal Md Basir, and A.I.M Ismail, and O. Anwar Bég, and Ali Kadir, (2019) Three-dimensional bioconvection nanofluid flow from a bi-axial stretching sheet with anisotropic slip. Sains Malaysiana, 48 (5). pp. 1137-1149. ISSN 0126-6039 http://www.ukm.my/jsm/malay_journals/jilid48bil5_2019/KandunganJilid48Bil5_2019.html
institution Universiti Kebangsaan Malaysia
building Tun Sri Lanang Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Kebangsaan Malaysia
content_source UKM Journal Article Repository
url_provider http://journalarticle.ukm.my/
language English
description A theoretical study is presented for three-dimensional flow of bioconvection nanofluids containing gyrotactic micro-organisms over a bi-axial stretching sheet. The effects of anisotropic slip, thermal jump and mass slip are considered in the mathematical model. Suitable similarity transformations are used to reduce the partial differential equation system into a nonlinear ordinary differential system. The transformed nonlinear ordinary differential equations with appropriate transformed boundary conditions are solved numerically with the bvp4c procedure in the symbolic software, MATLAB. The mathematical computations showed that an increase in Brownian motion parameter corresponds to a stronger thermophoretic force which encourages transport of nanoparticles from the hot bi-axial sheet to the quiescent fluid. This increases the nanoparticle volume fraction boundary layer. Fluid temperature and thermal boundary layer thickness are decreased with increasing stretching rate ratio of the bi-axial sheet. The present simulation is of relevance in the fabrication of bio-nanomaterials and thermally-enhanced media for bio-inspired fuel cells.
format Article
author Nur Ardiana Amirsom,
Uddin, M.J.
Md. Faisal Md Basir,
A.I.M Ismail,
O. Anwar Bég,
Ali Kadir,
spellingShingle Nur Ardiana Amirsom,
Uddin, M.J.
Md. Faisal Md Basir,
A.I.M Ismail,
O. Anwar Bég,
Ali Kadir,
Three-dimensional bioconvection nanofluid flow from a bi-axial stretching sheet with anisotropic slip
author_facet Nur Ardiana Amirsom,
Uddin, M.J.
Md. Faisal Md Basir,
A.I.M Ismail,
O. Anwar Bég,
Ali Kadir,
author_sort Nur Ardiana Amirsom,
title Three-dimensional bioconvection nanofluid flow from a bi-axial stretching sheet with anisotropic slip
title_short Three-dimensional bioconvection nanofluid flow from a bi-axial stretching sheet with anisotropic slip
title_full Three-dimensional bioconvection nanofluid flow from a bi-axial stretching sheet with anisotropic slip
title_fullStr Three-dimensional bioconvection nanofluid flow from a bi-axial stretching sheet with anisotropic slip
title_full_unstemmed Three-dimensional bioconvection nanofluid flow from a bi-axial stretching sheet with anisotropic slip
title_sort three-dimensional bioconvection nanofluid flow from a bi-axial stretching sheet with anisotropic slip
publisher Penerbit Universiti Kebangsaan Malaysia
publishDate 2019
url http://journalarticle.ukm.my/13636/1/23%20Nur%20Ardiana%20Amirsom.pdf
http://journalarticle.ukm.my/13636/
http://www.ukm.my/jsm/malay_journals/jilid48bil5_2019/KandunganJilid48Bil5_2019.html
_version_ 1651868042055909376
score 13.211869