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Particle Swarm Optimization-Based Direct Inverse Control for Controlling the Power Level of the Indonesian Multipurpose Reactor

机译:基于粒子群优化的直接逆控制印尼多用途反应堆功率水平

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摘要

A neural network-direct inverse control (NN-DIC) has been simulated to automatically control the power level of nuclear reactors. This method has been tested on an Indonesian pool type multipurpose reactor, namely, Reaktor Serba Guna-GA Siwabessy (RSG-GAS). The result confirmed that this method still cannot minimize errors and shorten the learning process time. A new method is therefore needed which will improve the performance of the DIC. The objective of this study is to develop a particle swarm optimization-based direct inverse control (PSO-DIC) to overcome the weaknesses of the NN-DIC. In the proposed PSO-DIC, the PSO algorithm is integrated into the DIC technique to train the weights of the DIC controller. This integration is able to accelerate the learning process. To improve the performance of the system identification, a backpropagation (BP) algorithm is introduced into the PSO algorithm. To show the feasibility and effectiveness of this proposed PSO-DIC technique, a case study on power level control of RSG-GAS is performed. The simulation results confirm that the PSO-DIC has better performance than NN-DIC. The new developed PSO-DIC has smaller steady-state error and less overshoot and oscillation.
机译:模拟了神经网络直接逆控制(NN-DIC)以自动控制核反应堆的功率水平。该方法已在印度尼西亚池式多功能反应堆Reaktor Serba Guna-GA Siwabessy(RSG-GAS)上进行了测试。结果证实,该方法仍不能最大程度地减少错误并缩短学习过程的时间。因此,需要一种新的方法来改善DIC的性能。这项研究的目的是开发一种基于粒子群优化的直接逆控制(PSO-DIC),以克服NN-DIC的弱点。在提出的PSO-DIC中,PSO算法被集成到DIC技术中以训练DIC控制器的权重。这种集成能够加速学习过程。为了提高系统识别的性能,在PSO算法中引入了反向传播(BP)算法。为了显示该提议的PSO-DIC技术的可行性和有效性,对RSG-GAS的功率电平控制进行了案例研究。仿真结果表明,PSO-DIC的性能优于NN-DIC。新开发的PSO-DIC具有较小的稳态误差和较小的过冲和振荡。

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  • 来源
    《Science and technology of nuclear installation》 |2016年第2016期|1065790.1-1065790.9|共9页
  • 作者单位

    Univ Indonesia, Dept Elect Engn, Kampus Baru UI, Depok 16424, Indonesia|Natl Nucl Energy Agcy Indonesia BATAN, Ctr Nucl Reactor Technol & Safety, Puspiptek Area, Serpong 15310, Tangerang Selat, Indonesia;

    Univ Indonesia, Dept Elect Engn, Kampus Baru UI, Depok 16424, Indonesia;

    Univ Indonesia, Dept Elect Engn, Kampus Baru UI, Depok 16424, Indonesia;

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