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   Modeling and Simulation of Water Softening by Nanofiltration Using Artificial Neural Network  
   
نویسنده Mousavi Mahmoud ,Avami Akram
منبع iranian journal of chemistry and chemical engineering - 2006 - دوره : 25 - شماره : 4 - صفحه:37 -46
چکیده    An artificial neural network has been used to determine the volume flux and rejections of ca2 + na+ and ci-, as a function of transmembrane pressure and concentrations of ca2 +, polyethyleneimine, and polyacrylic acid in water softening by nanofiltration process 'in presence of polyelectrolytes. the feed-forward multi-layer perceptron artificial neural network including an eight-neuron hidden layer has the least error in modeling this non-linear process. the overall agreement between the artificial neural network results and experimental data is very good for both the volume flux and rejections, because the maximum values ofnormalized bias and error are -0.01122 and 1.0737 respectively.
کلیدواژه Artificial neural network ,Nanofiltration ,Rejection ,Volume flux ,Water softening.
آدرس ferdowsi university of mashhad, Faculty ofEngineering, Department ofChemical Engineering, ایران, ferdowsi university of mashhad, Faculty ofEngineering, Department ofChemical Engineering, ایران
پست الکترونیکی mmousavi@um.ac.ir
 
     
   
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