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| اطلاعات مهندسی معدن دانشگاه زنجان و ... |
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Received 27 November 2005; revised 13 April 2006;
accepted 4 July 2006.
Available online 14 August 2006. AbstractThe stochastic nature of the cyclic swelling behavior of mudrock and its dependence on a large number of interdependent parameters was modeled using Time Delay Neural Networks (TDNNs). This method has facilitated predicting cyclic swelling pressure with an acceptable level of accuracy where developing a general mathematical model is almost impossible. A number of total pressure cells between shotcrete and concrete walls of the powerhouse cavern at Masjed–Soleiman Hydroelectric Powerhouse Project, South of Iran, where mudrock outcrops, confirmed a cyclic swelling pressure on the lining since 1999. In several locations, small cracks are generated which has raised doubts about long term stability of the powerhouse structure. This necessitated a study for predicting future swelling pressure. Considering the complexity of the interdependent parameters in this problem, TDNNs proved to be a powerful tool. The results of this modeling are presented in this paper. Keywords: Artificial neural networks; Time delay neural networks; Cyclic swelling pressure; Cyclic wetting and drying; Pressure cell Dr Doosmohammadi ,... essay |
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پنجشنبه یکم اسفند 1387ساعت 0:21 توسط حسین کامران حقیقی |
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مهر 1388 تیر 1388 اردیبهشت 1388 اسفند 1387 بهمن 1387 آبان 1387 مهر 1387 تیر 1387 فروردین 1387 اسفند 1386 بهمن 1386 |
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غنیون و کامران حقیقی حسن حمیدی نژاد محمد محسن غنیون حسین کامران حقیقی جواد ترکاشوند هادی عباسی |
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