首页> 中文期刊> 《等离子体科学和技术:英文版》 >Neural Network Prediction of Disruptions Caused by Locked Modes on J-TEXT Tokamak

Neural Network Prediction of Disruptions Caused by Locked Modes on J-TEXT Tokamak

         

摘要

Prediction of disruptions caused by locked modes using the Back-Propagation(BP)neural network is completed on J-TEXT tokamak.The network,which is based on the BP neural network,uses Mirnov coils and locked mode coils signals as input data,and outputs a signal including information of prediction of locked mode.The rate of successful prediction of locked modes is more than 90%.For intrinsic locked mode disruptions,the network can give a prewarning signal about 1 ms ahead of the locking-time.For the disruption caused by resonant magnetic perturbation(RMPs)locked modes,the network can give a prewarning signal about 10 ms ahead of the locking-time.

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