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A Neural Network Controller for Load Following Operation of Nuclear Reactors Fulltext
نويسندهگان:
[ MEHRDAD KHAJAVI ] - Training Manager Iran Energy Efficiency Organization (SABA) [ MOHAMMAD MENHAJ ] - Associate Prof. School of computer and electrical engineering. Oklahoma State University Oklahoma, U.S.A [ AMIR SURATGAR ] - Amir-Kabir University ofTechnology Electrical Engineering Department, Tehran Iran.
خلاصه مقاله:
Nuclear reactors are in nature nonlinear and their parameters vary with time as a function of power level, fuel burnup, and control rod worth. Therefore, these characteristics must be considered if large power variations occur in power plant working regimes (for example in load following conditions). In this paper a Neural Network Controller (NNC) is presented. A Robust Optimal Regulator (ROSTR)[1] response is used as a reference Self-Tuning
trajectory to determine the feedback, feedforward and observer gains of the NNC. The NNC has displayed good stability and performance for a wide range of operation as well as considerable reduction in computation time in regard to ROSTR and Fuzzy Logic Controller (FAROC) [2].
كلمات كليدي:
Nuclear Reactor, Fuzzy Control, Neural Network, Load Following
[ لينک دايمي به اين صفحه: http://www.civilica.com/Paper-PSC16-PSC16_089.html ]
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