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Computational Analysis of Fluid Forces on an Obstacle in a Channel Driven Cavity: Viscoplastic Material Based Characteristics

In the current work, an investigation has been carried out for the Bingham fluid flow in a channel-driven cavity with a square obstacle installed near the inlet. A square cavity is placed in a channel to accomplish the desired results. The flow has been induced using a fully developed parabolic velo...

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Autores principales: Mahmood, Rashid, Hussain Majeed, Afraz, Ain, Qurrat ul, Awrejcewicz, Jan, Siddique, Imran, Shahzad, Hasan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8781405/
https://www.ncbi.nlm.nih.gov/pubmed/35057249
http://dx.doi.org/10.3390/ma15020529
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author Mahmood, Rashid
Hussain Majeed, Afraz
Ain, Qurrat ul
Awrejcewicz, Jan
Siddique, Imran
Shahzad, Hasan
author_facet Mahmood, Rashid
Hussain Majeed, Afraz
Ain, Qurrat ul
Awrejcewicz, Jan
Siddique, Imran
Shahzad, Hasan
author_sort Mahmood, Rashid
collection PubMed
description In the current work, an investigation has been carried out for the Bingham fluid flow in a channel-driven cavity with a square obstacle installed near the inlet. A square cavity is placed in a channel to accomplish the desired results. The flow has been induced using a fully developed parabolic velocity at the inlet and Neumann condition at the outlet, with zero no-slip conditions given to the other boundaries. Three computational grids, C(1), C(2), and C(3), are created by altering the position of an obstacle of square shape in the channel. Fundamental conservation and rheological law for viscoplastic Bingham fluids are enforced in mathematical modeling. Due to the complexity of the representative equations, an effective computing strategy based on the finite element approach is used. At an extra-fine level, a hybrid computational grid is created; a very refined level is used to obtain results with higher accuracy. The solution has been approximated using P(2) − P(1) elements based on the shape functions of the second and first-order polynomial polynomials. The parametric variables are ornamented against graphical trends. In addition, velocity, pressure plots, and line graphs have been provided for a better physical understanding of the situation Furthermore, the hydrodynamic benchmark quantities such as pressure drop, drag, and lift coefficients are assessed in a tabular manner around the external surface of the obstacle. The research predicts the effects of Bingham number (Bn) on the drag and lift coefficients on all three grids C(1), C(2), and C(3), showing that the drag has lower values on the obstacle in the C(2) grid compared with C(1) and C(3) for all values of Bn. Plug zone dominates in the channel downstream of the obstacle with augmentation in Bn, limiting the shear zone in the vicinity of the obstacle.
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spelling pubmed-87814052022-01-22 Computational Analysis of Fluid Forces on an Obstacle in a Channel Driven Cavity: Viscoplastic Material Based Characteristics Mahmood, Rashid Hussain Majeed, Afraz Ain, Qurrat ul Awrejcewicz, Jan Siddique, Imran Shahzad, Hasan Materials (Basel) Article In the current work, an investigation has been carried out for the Bingham fluid flow in a channel-driven cavity with a square obstacle installed near the inlet. A square cavity is placed in a channel to accomplish the desired results. The flow has been induced using a fully developed parabolic velocity at the inlet and Neumann condition at the outlet, with zero no-slip conditions given to the other boundaries. Three computational grids, C(1), C(2), and C(3), are created by altering the position of an obstacle of square shape in the channel. Fundamental conservation and rheological law for viscoplastic Bingham fluids are enforced in mathematical modeling. Due to the complexity of the representative equations, an effective computing strategy based on the finite element approach is used. At an extra-fine level, a hybrid computational grid is created; a very refined level is used to obtain results with higher accuracy. The solution has been approximated using P(2) − P(1) elements based on the shape functions of the second and first-order polynomial polynomials. The parametric variables are ornamented against graphical trends. In addition, velocity, pressure plots, and line graphs have been provided for a better physical understanding of the situation Furthermore, the hydrodynamic benchmark quantities such as pressure drop, drag, and lift coefficients are assessed in a tabular manner around the external surface of the obstacle. The research predicts the effects of Bingham number (Bn) on the drag and lift coefficients on all three grids C(1), C(2), and C(3), showing that the drag has lower values on the obstacle in the C(2) grid compared with C(1) and C(3) for all values of Bn. Plug zone dominates in the channel downstream of the obstacle with augmentation in Bn, limiting the shear zone in the vicinity of the obstacle. MDPI 2022-01-11 /pmc/articles/PMC8781405/ /pubmed/35057249 http://dx.doi.org/10.3390/ma15020529 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Mahmood, Rashid
Hussain Majeed, Afraz
Ain, Qurrat ul
Awrejcewicz, Jan
Siddique, Imran
Shahzad, Hasan
Computational Analysis of Fluid Forces on an Obstacle in a Channel Driven Cavity: Viscoplastic Material Based Characteristics
title Computational Analysis of Fluid Forces on an Obstacle in a Channel Driven Cavity: Viscoplastic Material Based Characteristics
title_full Computational Analysis of Fluid Forces on an Obstacle in a Channel Driven Cavity: Viscoplastic Material Based Characteristics
title_fullStr Computational Analysis of Fluid Forces on an Obstacle in a Channel Driven Cavity: Viscoplastic Material Based Characteristics
title_full_unstemmed Computational Analysis of Fluid Forces on an Obstacle in a Channel Driven Cavity: Viscoplastic Material Based Characteristics
title_short Computational Analysis of Fluid Forces on an Obstacle in a Channel Driven Cavity: Viscoplastic Material Based Characteristics
title_sort computational analysis of fluid forces on an obstacle in a channel driven cavity: viscoplastic material based characteristics
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8781405/
https://www.ncbi.nlm.nih.gov/pubmed/35057249
http://dx.doi.org/10.3390/ma15020529
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