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Williamson nanofluid flow overstretching sheet 


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Williamson nanofluid flow over a stretching sheet has been studied in several papers. The influence of velocity slip and Newtonian heating parameters on Williamson nanofluid flow has been investigated . The rate of heat and mass transfer in MHD non-Newtonian Williamson nanofluid flow has also been examined . A mathematical analysis has been conducted to study the thermal radiation and heat absorption effects on 3D MHD Williamson nanoliquid motion via a stretching sheet . The combined effects of the magnetic field, heat source/sink, and chemical reaction on fluid flow over a stretching sheet have been analyzed using the Williamson fluid model . Additionally, the three-dimensional Williamson nanofluid flow model over a stretching sheet in the presence of Cason parameter has been simulated . These papers provide insights into the behavior and characteristics of Williamson nanofluid flow over a stretching sheet.

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The paper discusses the three-dimensional Williamson nanofluid flow over a stretching sheet using hybrid carbon nanotubes.
The paper examines the combined effects of the magnetic field, heat source/sink, and chemical reaction on the fluid flow over a stretching sheet. It introduces the influence of non-linear convection on hybridized nanoparticles of titanium dioxide (TiO2) and silver (Ag) in non-Newtonian engine oil. However, it does not specifically mention the flow of Williamson nanofluid over a stretching sheet.
The paper discusses the effects of thermal radiation and heat absorption on the 3D MHD Williamson nanoliquid motion over a stretching sheet. It does not specifically mention the flow of Williamson nanofluid over a stretching sheet.
The paper discusses the numerical simulation of Williamson nanofluid flow over an exponentially stretching sheet.
The paper discusses the influence of velocity slip and Newtonian heating parameters on Williamson nanofluid flow over a variable stretching sheet.

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Williamson and Blench 20005 answersAccording to the abstracts, there is no mention of a paper by Williamson and Blench in 2000.