Wavelets solution of MHD 3-D fluid flow in the presence of slip and thermal radiation effects

2018 ◽  
Vol 30 (2) ◽  
pp. 023104 ◽  
Author(s):  
M. Usman ◽  
T. Zubair ◽  
M. Hamid ◽  
Rizwan Ul Haq ◽  
Wei Wang
2019 ◽  
Vol 44 (9) ◽  
pp. 7833-7842 ◽  
Author(s):  
Sadia Siddiqa ◽  
Naheed Begum ◽  
T. Iftikhar ◽  
M. Rafiq ◽  
Md. Anwar Hossain ◽  
...  

2021 ◽  
Vol 148 ◽  
pp. 110996
Author(s):  
Musharafa Saleem ◽  
Qasim Ali Chaudhry ◽  
A. Othman Almatroud

Author(s):  
A. Shahid ◽  
M. Ali Abbas ◽  
H.L. Huang ◽  
S.R. Mishra ◽  
M.M. Bhatti

The present study analyses the dissipative influence into an unsteady electrically conducting fluid flow embedded in a pervious medium over a shrinkable sheet. The behavior of thermal radiation and chemical reactions are also contemplated. The governing partial differential equations are reformed to ordinary differential equations by operating similarity transformations. The numerical outcomes for the arising non-linear boundary value problem are determined by implementing the Successive linearization method (SLM) via Matlab software. The velocity, temperature, and concentration magnitudes for distant values of the governing parametric quantities are conferred, and their conduct is debated via graphical curves. The surface drag coefficient increases, whereas the local Nusselt number and Sherwood number decreases for enhancing unsteadiness parameter across suction parameter. Moreover, the magnetic and suction parameters accelerate velocity magnitudes while by raising porosity parameter, velocity decelerates. Larger numeric of thermal radiation parameter and Eckert number accelerates the temperature profile while by enhancing Prandtl number it decelerates. Schmidt number and chemical reaction parameters slowdowns the concentration distribution, and the chemical reaction parameter influences on the point of chemical reaction that benefits the interface mass transfer. It is expected that the current achieved results will furnish fruitful knowledge in industrious utilities.


Author(s):  
Pooja P Humane ◽  
Vishwambhar S Patil ◽  
Amar B Patil

The flow of Casson–Williamson fluid on a stretching surface is considered for the study. The movement of fluid is examined under the effect of external magnetic field, thermal radiation and chemical consequences. The model is formed by considering all the physical aspects responsible for the physical mechanism. The formed mathematical model (partial differential equation) is numerically solved after transforming it into an ordinary one (ordinary differential equation) via similarity invariants. The physical mechanism for velocity, temperature, and concentration is examined through the associated parameters like radiation index, Williamson and Casson parameter, suction/injection parameter, porosity index, and chemical reaction parameter.


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