Chemical reaction and thermal radiation impact on a nanofluid flow in a rotating channel with Hall current
Abstract The objective of the present exploration is to examine the nanoliquid flow amid two horizontal infinite plates. The lower plate is stretchable and permeable. The uniqueness of the flow model is assimilated with the Hall effect, variable thermal conductivity, thermal radiation, and irregular...
        Saved in:
      
    
                  | Main Authors: | Yu-Pei Lv, Naila Shaheen, Muhammad Ramzan, M. Mursaleen, Kottakkaran Sooppy Nisar, M. Y. Malik | 
|---|---|
| Format: | article | 
| Language: | EN | 
| Published: | 
        
      Nature Portfolio    
    
      2021
     | 
| Subjects: | |
| Online Access: | https://doaj.org/article/1464a1747a1b48d5ade750d17634fda7 | 
| Tags: | 
       Add Tag    
     
      No Tags, Be the first to tag this record!
   
 | 
Similar Items
- 
                
        
          On hybrid nanofluid Yamada-Ota and Xue flow models in a rotating channel with modified Fourier law        
                  
by: Muhammad Ramzan, et al.
Published: (2021) - 
                
        
          Von Karman rotating nanofluid flow with modified Fourier law and variable characteristics in liquid and gas scenarios        
                  
by: Muhammad Ramzan, et al.
Published: (2021) - 
                
        
          Analysis of Newtonian heating and higher-order chemical reaction on a Maxwell nanofluid in a rotating frame with gyrotactic microorganisms and variable heat source/sink        
                  
by: Yu-Ming Chu, et al.
Published: (2021) - 
                
        
          Nanofluid flow with autocatalytic chemical reaction over a curved surface with nonlinear thermal radiation and slip condition        
                  
by: Muhammad Ramzan, et al.
Published: (2020) - 
                
        
          Role of Cattaneo–Christov heat flux in an MHD Micropolar dusty nanofluid flow with zero mass flux condition        
                  
by: Muhammad Ramzan, et al.
Published: (2021)