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   Prediction of Deformation of Circular Plates Subjected to Impulsive Loading Using GMDH-type Neural Network  
   
نویسنده Babaei
منبع international journal of engineering - 2014 - دوره : 27 - شماره : 10 - صفحه:1635 -1644
چکیده    In this paper, experimental responses of the clamped mild steel, copper, and aluminium circular platesare presented subjected to blast loading. the gmdh-type (group method of data handling) neuralnetworks are then used for the modelling of the mid-point deflection thickness ratio of the circularplates using those experimental results. the aim of such modelling is to show how the mid-pointdeflection varies with the variations of the important parameters. further, it is shown that the use ofdimensionless input variables, rather than the actual physical parameters, in such gmdh-type network modelling leads to simpler polynomial expressions which can be used for modelling and prediction purposes. it is also demonstrated that singular value decomposition (svd) can be effectively used to find the vector of coefficients of quadratic sub-expressions embodied in such gmdh-type networks. such application of svd will highly improve the performance of gmdh-type networks to model the nonlinear dynamic behavior of circular plates.
کلیدواژه Neural Network ,Modelling ,Circular Plate ,Impulsive Load ,Deformation
آدرس university of guilan, Engineering Faculty, Department of Mechanical Engineering, ایران
 
     
   
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