Computer-aided design of the effects of Cr2O3 nanoparticles on split tensile strength and water permeability of high strength concrete

被引:0
|
作者
Ali NAZARI [1 ]
Shadi RIAHI [1 ]
机构
[1] Department of Technical and Engineering Sciences, Islamic Azad University, Saveh Branch
关键词
concrete; curing medium; Cr2O3; nanoparticles; artificial neural network; genetic programming; split tensile strength; percentage of water absorption;
D O I
暂无
中图分类号
TU528 [混凝土及混凝土制品]; TB383.1 [];
学科分类号
070205 ; 0805 ; 080501 ; 080502 ; 081304 ; 1406 ;
摘要
In the present paper, two models based on artificial neural networks and genetic programming for predicting split tensile strength and percentage of water absorption of concretes containing Cr2O3 nanoparticles have been developed at different ages of curing. For purpose of building these models, training and testing using experimental results for 144 specimens produced with 16 different mixture proportions were conducted. The data used in the multilayer feed forward neural networks models and input variables of genetic programming models are arranged in a format of 8 input parameters that cover the cement content, nanoparticle content, aggregate type, water content, the amount of superplasticizer, the type of curing medium, age of curing and number of testing try. According to these input parameters, in the neural networks and genetic programming models the split tensile strength and percentage of water absorption values of concretes containing Cr2O3 nanoparticles were predicted. The training and testing results in the neural network and genetic programming models have shown that every two models have strong potential for predicting the split tensile strength and percentage of water absorption values of concretes containing Cr2O3 nanoparticles. It has been found that NN and GEP models will be valid within the ranges of variables. In neural networks model, as the training and testing ended when minimum error norm of network was gained, the best results were obtained and in genetic programming model, when 4 genes were selected to construct the model, the best results were acquired. Although neural network has predicted better results, genetic programming is able to predict reasonable values with a simpler method rather than neural network.
引用
收藏
页码:663 / 675
页数:13
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