A numerical study of the wall effects for Newtonian fluid flow over a cone

The effect of blockage ratio i.e. ratio of diameter of cone, d and flow channel, D on the drag coefficients due to Newtonian fluid flow over cone is studied numerically by solving the CFD equations in Ansys FLUENT. The drag coefficients (CD) as a function of Reynolds number (Re) and d/D are reported...

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Main Authors: Saroj Kumar Samantaray, Soumya Sanjeeb Mohapatra, Basudeb Munshi
Format: Article
Language:English
Published: Elsevier 2017-12-01
Series:Engineering Science and Technology, an International Journal
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2215098617306717
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spelling doaj-f89e2cf2206c49508b248255833992712020-11-25T00:54:41ZengElsevierEngineering Science and Technology, an International Journal2215-09862017-12-012061662167510.1016/j.jestch.2017.12.012A numerical study of the wall effects for Newtonian fluid flow over a coneSaroj Kumar SamantaraySoumya Sanjeeb MohapatraBasudeb MunshiThe effect of blockage ratio i.e. ratio of diameter of cone, d and flow channel, D on the drag coefficients due to Newtonian fluid flow over cone is studied numerically by solving the CFD equations in Ansys FLUENT. The drag coefficients (CD) as a function of Reynolds number (Re) and d/D are reported in the range of Re: 0.01–30,000 and d/D: 0.0015–0.9. The obtained CD values are higher for confined flow (high d/D) than unconfined flow. Validity of CDRe2=constant is ascertained for the confined Newtonian fluid flow over the cone. The variations of angle of separation and its effect on the drag coefficients are examined and justified. The comparative studies among the drag coefficients of sphere, cylinder and cone are carried out in terms of wall effect, re-circulation length and slope of axial velocity profile. The observations revealed the order of CD as cylinder > cone > sphere. The hydrodynamic interactions between wall and fluid medium are presented with the help of velocity contour plots. More asymmetric flow is observed around the particle at higher Reynolds number and for higher wall effect. The simulated results presented herein for unconfined flow are in good agreement with the literature data.http://www.sciencedirect.com/science/article/pii/S2215098617306717Wall effectConeDrag coefficientBlockage ratioAngle of separationRe-circulation lengthFLUENT
collection DOAJ
language English
format Article
sources DOAJ
author Saroj Kumar Samantaray
Soumya Sanjeeb Mohapatra
Basudeb Munshi
spellingShingle Saroj Kumar Samantaray
Soumya Sanjeeb Mohapatra
Basudeb Munshi
A numerical study of the wall effects for Newtonian fluid flow over a cone
Engineering Science and Technology, an International Journal
Wall effect
Cone
Drag coefficient
Blockage ratio
Angle of separation
Re-circulation length
FLUENT
author_facet Saroj Kumar Samantaray
Soumya Sanjeeb Mohapatra
Basudeb Munshi
author_sort Saroj Kumar Samantaray
title A numerical study of the wall effects for Newtonian fluid flow over a cone
title_short A numerical study of the wall effects for Newtonian fluid flow over a cone
title_full A numerical study of the wall effects for Newtonian fluid flow over a cone
title_fullStr A numerical study of the wall effects for Newtonian fluid flow over a cone
title_full_unstemmed A numerical study of the wall effects for Newtonian fluid flow over a cone
title_sort numerical study of the wall effects for newtonian fluid flow over a cone
publisher Elsevier
series Engineering Science and Technology, an International Journal
issn 2215-0986
publishDate 2017-12-01
description The effect of blockage ratio i.e. ratio of diameter of cone, d and flow channel, D on the drag coefficients due to Newtonian fluid flow over cone is studied numerically by solving the CFD equations in Ansys FLUENT. The drag coefficients (CD) as a function of Reynolds number (Re) and d/D are reported in the range of Re: 0.01–30,000 and d/D: 0.0015–0.9. The obtained CD values are higher for confined flow (high d/D) than unconfined flow. Validity of CDRe2=constant is ascertained for the confined Newtonian fluid flow over the cone. The variations of angle of separation and its effect on the drag coefficients are examined and justified. The comparative studies among the drag coefficients of sphere, cylinder and cone are carried out in terms of wall effect, re-circulation length and slope of axial velocity profile. The observations revealed the order of CD as cylinder > cone > sphere. The hydrodynamic interactions between wall and fluid medium are presented with the help of velocity contour plots. More asymmetric flow is observed around the particle at higher Reynolds number and for higher wall effect. The simulated results presented herein for unconfined flow are in good agreement with the literature data.
topic Wall effect
Cone
Drag coefficient
Blockage ratio
Angle of separation
Re-circulation length
FLUENT
url http://www.sciencedirect.com/science/article/pii/S2215098617306717
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