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Estimation of break location and size for loss of coolant accidents using neural networks
Authors:Man Gyun Na  Sun Ho Shin  Dong Won Jung  Soong Pyung Kim  Ji Hwan Jeong  Byung Chul Lee
Affiliation:aDepartment of Nuclear Engineering, Chosun University, Gwangju 501-759, South Korea;bDepartment of Environmental System, Cheonan College of Foreign Studies, Cheonan, South Korea;cFuture and Challenges, Inc., Seoul, South Korea
Abstract:In this work, a probabilistic neural network (PNN) that has been applied well to the classification problems is used in order to identify the break locations of loss of coolant accidents (LOCA) such as hot-leg, cold-leg and steam generator tubes. Also, a fuzzy neural network (FNN) is designed to estimate the break size. The inputs to PNN and FNN are time-integrated values obtained by integrating measurement signals during a short time interval after reactor scram. An automatic structure constructor for the fuzzy neural network automatically selects the input variables from the time-integrated values of many measured signals, and optimizes the number of rules and its related parameters. It is verified that the proposed algorithm identifies very well the break locations of LOCAs and also, estimate their break size accurately.
Keywords:
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