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Computational Simulation of Cross-Flow of Williamson Fluid Over a Porous Shrinking/Stretching Surface Comprising Hybrid Nanofluid and Thermal Radiation

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Date

2022

Journal Title

Journal ISSN

Volume Title

Publisher

Amer inst Mathematical Sciences-aims

Open Access Color

GOLD

Green Open Access

No

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No
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Top 10%
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Abstract

Recent nanotechnology advancements have created a remarkable platform for the development of a better performance of ultrahigh coolant acknowledged as nanofluid for numerous industrial and engineering technologies. The current study aims to examine the boundary-layer cross-flow of Williamson fluid through a rotational stagnation point towards either a shrinking or stretching permeable wall incorporated by a hybrid nanofluid. The shape factors along with the radiation effect are also taken into account. The contained boundary layers are the type of stream-wise by shrinking/stretching process along with the sheet. Employing the suitable transformations, the partial differential equations (PDEs) are transmuted to similarity (ordinary) differential equations (ODEs). The transmuted system of ODEs is worked out by using a built-in package bvp4c in MATLAB for distinct values of pertaining parameters. Dual (first and second branch) outcomes are found for the shrinking surface. The results suggest that the inclusion of hybrid particles uplifts the drag force as well as the heat transfer in both solutions. In addition, the Weissenberg number accelerates the separation. Moreover, the effect of suction permits the friction factor and heat transfer to improve significantly at the porous shrinking/stretching sheet of hybrid nanofluid.

Description

Zaib, Aurang/0000-0002-9863-9624; Khan, Umair/0000-0002-2034-1211; Sherif, El-Sayed M./0000-0003-2080-8552

Keywords

Williamson Fluid, Cross-Flow, Hybrid Nanofluid, Thermal Radiation, Shrinking/Stretching Surface, Heat Transfer Enhancement in Nanofluids, shrinking/stretching surface, Biomedical Engineering, FOS: Mechanical engineering, Nanofluid, FOS: Medical engineering, Mechanics, Quantum mechanics, Nanofluids, Engineering, Differential equation, Parasitic drag, Heat transfer, QA1-939, Solar Air Heater Heat Transfer Analysis, Fluid Flow, williamson fluid, Mechanical Engineering, Physics, Microchannel Heat Transfer and Cooling Technology, Materials science, Weissenberg number, Boundary layer, hybrid nanofluid, cross-flow, Physical Sciences, Thermodynamics, thermal radiation, Coolant, Flow (mathematics), Mathematics, Ordinary differential equation

Fields of Science

02 engineering and technology, 0202 electrical engineering, electronic engineering, information engineering, 0210 nano-technology

Citation

Khan, Umair;...et.al. (2022). "Computational simulation of cross-flow of Williamson fluid over a porous shrinking/stretching surface comprising hybrid nanofluid and thermal radiation", AIMS Mathematics, Vol.7, No.4, pp.6489-6515.

WoS Q

Q1

Scopus Q

Q1
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OpenCitations Citation Count
19

Source

AIMS Mathematics

Volume

7

Issue

4

Start Page

6489

End Page

6515
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Scopus : 26

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Mendeley Readers : 9

SCOPUS™ Citations

28

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Web of Science™ Citations

22

checked on Feb 26, 2026

Page Views

3

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