Sieve tray
                                                        
                                                                                                            
                                                            Point efficiency
                                                        
                                                                                                            
                                                            artificial neural network
                                                        
                                                                                                            
                                                            Back-propagation algorithm
                                                        
                                                                                                                                                                                         
                                                                        
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                                        An application of neural network technique was introduced in modeling the point efficiency of sieve tray, based on a
data bank of around 33l data points collected from the open literature.Two models proposed,using back-propagation
algorithm, the first model network consists: volumetric liquid flow rate (QL), F foctor for gas (FS), liquid density (pL),
gas density (pg), liquid viscosity (pL), gas viscosity (pg), hole diameter (dH), weir height (hw), pressure (P) and surface
tension between liquid phase and gas phase (o). In the second network, there are six parameters as dimensionless
group: Flowfactor (F), Reynolds number for liquid (ReL), Reynolds number for gas through hole (Reg), ratio of weir
height to hole diqmeter
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