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Flow Characteristics of Heat and Mass for Nanofluid under Different Operating Temperatures over Wedge and Plate

Background and Purpose: Nanofluids are a new class of heat transfer fluids that are used for different heat transfer applications. The transport characteristics of these fluids not only depend upon flow conditions but also strongly depend on operating temperature. In respect of these facts, the prop...

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Autores principales: Rizwan, Muhammad, Hassan, Mohsan, Asjad, Muhammad Imran, Tag-ElDin, ElSayed M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9787794/
https://www.ncbi.nlm.nih.gov/pubmed/36557380
http://dx.doi.org/10.3390/mi13122080
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author Rizwan, Muhammad
Hassan, Mohsan
Asjad, Muhammad Imran
Tag-ElDin, ElSayed M.
author_facet Rizwan, Muhammad
Hassan, Mohsan
Asjad, Muhammad Imran
Tag-ElDin, ElSayed M.
author_sort Rizwan, Muhammad
collection PubMed
description Background and Purpose: Nanofluids are a new class of heat transfer fluids that are used for different heat transfer applications. The transport characteristics of these fluids not only depend upon flow conditions but also strongly depend on operating temperature. In respect of these facts, the properties of these fluids are modified to measure the temperature effects and used in the governing equations to see the heat and mass flow behavior. Design of Model: Consider the nanofluids which are synthesized by dispersing metallic oxides (SiO(2), Al(2)O(3)), carbon nanostructures (PEG-TGr, PEG-GnP), and nanoparticles in deionized water (DIW), with (0.025–0.1%) particle concentration over (30–50 °C) temperature range. The thermophysical properties of these fluids are modeled theoretically with the help of experimental data as a function of a temperature and volume fraction. These models are further used in transport equations for fluid flow over both wedge and plate. To get the solution, the equations are simplified in the shape of ordinary differential equations by applying the boundary layer and similarity transformations and then solved by the RK method. Results: The solution of the governing equation is found in the form of velocity and temperature expressions for both geometries and displayed graphically for discussion. Moreover, momentum and thermal boundary layer thicknesses, displacement, momentum thicknesses, the coefficient of skin friction, and Nusselt number are calculated numerically in tabular form. Finding: The maximum reduction and enhancement in velocity and temperature profile is found in the case of flow over the plate as compared to the wedge. The boundary layer parameters are increased in the case of flow over the plate than the wedge.
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spelling pubmed-97877942022-12-24 Flow Characteristics of Heat and Mass for Nanofluid under Different Operating Temperatures over Wedge and Plate Rizwan, Muhammad Hassan, Mohsan Asjad, Muhammad Imran Tag-ElDin, ElSayed M. Micromachines (Basel) Article Background and Purpose: Nanofluids are a new class of heat transfer fluids that are used for different heat transfer applications. The transport characteristics of these fluids not only depend upon flow conditions but also strongly depend on operating temperature. In respect of these facts, the properties of these fluids are modified to measure the temperature effects and used in the governing equations to see the heat and mass flow behavior. Design of Model: Consider the nanofluids which are synthesized by dispersing metallic oxides (SiO(2), Al(2)O(3)), carbon nanostructures (PEG-TGr, PEG-GnP), and nanoparticles in deionized water (DIW), with (0.025–0.1%) particle concentration over (30–50 °C) temperature range. The thermophysical properties of these fluids are modeled theoretically with the help of experimental data as a function of a temperature and volume fraction. These models are further used in transport equations for fluid flow over both wedge and plate. To get the solution, the equations are simplified in the shape of ordinary differential equations by applying the boundary layer and similarity transformations and then solved by the RK method. Results: The solution of the governing equation is found in the form of velocity and temperature expressions for both geometries and displayed graphically for discussion. Moreover, momentum and thermal boundary layer thicknesses, displacement, momentum thicknesses, the coefficient of skin friction, and Nusselt number are calculated numerically in tabular form. Finding: The maximum reduction and enhancement in velocity and temperature profile is found in the case of flow over the plate as compared to the wedge. The boundary layer parameters are increased in the case of flow over the plate than the wedge. MDPI 2022-11-26 /pmc/articles/PMC9787794/ /pubmed/36557380 http://dx.doi.org/10.3390/mi13122080 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
Rizwan, Muhammad
Hassan, Mohsan
Asjad, Muhammad Imran
Tag-ElDin, ElSayed M.
Flow Characteristics of Heat and Mass for Nanofluid under Different Operating Temperatures over Wedge and Plate
title Flow Characteristics of Heat and Mass for Nanofluid under Different Operating Temperatures over Wedge and Plate
title_full Flow Characteristics of Heat and Mass for Nanofluid under Different Operating Temperatures over Wedge and Plate
title_fullStr Flow Characteristics of Heat and Mass for Nanofluid under Different Operating Temperatures over Wedge and Plate
title_full_unstemmed Flow Characteristics of Heat and Mass for Nanofluid under Different Operating Temperatures over Wedge and Plate
title_short Flow Characteristics of Heat and Mass for Nanofluid under Different Operating Temperatures over Wedge and Plate
title_sort flow characteristics of heat and mass for nanofluid under different operating temperatures over wedge and plate
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9787794/
https://www.ncbi.nlm.nih.gov/pubmed/36557380
http://dx.doi.org/10.3390/mi13122080
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