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      مشاهده مورد 
      •   صفحهٔ اصلی
      • نشریات انگلیسی
      • Journal of Soft Computing in Civil Engineering
      • Volume 3, Issue 2
      • مشاهده مورد
      •   صفحهٔ اصلی
      • نشریات انگلیسی
      • Journal of Soft Computing in Civil Engineering
      • Volume 3, Issue 2
      • مشاهده مورد
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      Prediction of Flexural Strength of Concrete Produced by Using Pozzolanic Materials and Partly Replacing NFA by MS

      (ندگان)پدیدآور
      Mane, KiranKulkarni, DilipPrakash, K.
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      نوع مدرک
      Text
      Regular Article
      زبان مدرک
      English
      نمایش کامل رکورد
      چکیده
      The use of huge quantity of natural fine aggregate (NFA) and cement in civil construction work which have given rise to various ecological problems. The industrial waste like Blast furnace slag (GGBFS), fly ash, metakaolin, silica fume can be used as partly replacement for cement and manufactured sand obtained from crusher, was partly used as fine aggregate. In this work, MATLAB software model is developed using neural network toolbox to predict the flexural strength of concrete made by using pozzolanic materials and partly replacing natural fine aggregate (NFA) by Manufactured sand (MS). Flexural strength was experimentally calculated by casting beams specimens and results obtained from experiment were used to develop the artificial neural network (ANN) model. Total 131 results values were used to modeling formation and from that 30% data record was used for testing purpose and 70% data record was used for training purpose. 25 input materials properties were used to find the 28 days flexural strength of concrete obtained from partly replacing cement with pozzolans and partly replacing natural fine aggregate (NFA) by manufactured sand (MS). The results obtained from ANN model provides very strong accuracy to predict flexural strength of concrete obtained from partly replacing cement with pozzolans and natural fine aggregate (NFA) by manufactured sand.
      کلید واژگان
      pozzolanic materials
      Manufactured sand
      Flexural Strength
      Artificial Neural Network
      Artificial Neural Networks

      شماره نشریه
      2
      تاریخ نشر
      2019-04-01
      1398-01-12
      ناشر
      Pouyan Press
      سازمان پدید آورنده
      Ph.D. Research Scholar, S.D.M. College of Engineering and Technology, Dharwad, Karanataka, India
      Professor, Department of Civil Engineering, S.D.M. College of Engineering and Technology, Dharwad, Karanataka, India
      Principal, Govt. Engineering College, Haveri, Devagiri, Karanataka, India

      شاپا
      2588-2872
      URI
      https://dx.doi.org/10.22115/scce.2019.197000.1121
      http://www.jsoftcivil.com/article_95795.html
      https://iranjournals.nlai.ir/handle/123456789/44894

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