Modeling of Oxidative Coupling of Methane over Mn/Na۲WO۴/SiO۲ Catalyst Using Artificial Neural Network

  • سال انتشار: 1392
  • محل انتشار: Iranian Journal of Chemistry and Chemical Engineering، دوره: 32، شماره: 3
  • کد COI اختصاصی: JR_IJCCE-32-3_012
  • زبان مقاله: انگلیسی
  • تعداد مشاهده: 60
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نویسندگان

Mohammad Reza Ehsani

Department of Chemical Engineering, Isfahan University of Technology, P.O. Box ۸۴۱۵۶-۸۳۱۱۱ Isfahan, I.R. IRAN

Hamed Bateni

Department of Chemical Engineering, Isfahan University of Technology, P.O. Box ۸۴۱۵۶-۸۳۱۱۱ Isfahan, I.R. IRAN

Ghazal Razi Parchikolaei

Department of Chemical Engineering, Isfahan University of Technology, P.O. Box ۸۴۱۵۶-۸۳۱۱۱ Isfahan, I.R. IRAN

چکیده

In this article, the effect of operating conditions, such as temperature, Gas Hourly Space Velocity (GHSV), CH۴/O۲ ratio and diluents gas (mol% N۲) on ethylene production by Oxidative Coupling of Methane (OCM) in a fixed bed reactor at atmospheric pressure was studied over Mn/Na۲WO۴/SiO۲ catalyst. Based on the properties of neural networks, an artificial neural network was used for model development from experimental data. In order to prevent network complexity and effective data input to network, principal component analysis method was used and the numbers of output parameters were reduced from ۴ to ۲. A feed-forward back-propagation network was used for simulating the relations between process operating conditions and aspects of catalytic performance, which include conversion of methane, C۲+ products selectivity, yield of C۲+ and C۲H۴/C۲H۶ ratio. Levenberg– Marquardt method is presented to train the network. For first output, optimum network with ۴-۹-۱ topology and for second output, optimum network with ۴-۶-۱ topology was prepared.

کلیدواژه ها

Oxidative Coupling of Methane (OCM), Mn/Na۲WO۴ /SiO۲ catalyst, Principal components, artificial neural network (ANN)

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