Naimi, A and Deng, J and Shimjith, SR and Arul, J
(2021)
Dynamic Neural Network-based Feedback Linearization Control of a Pressurized Water Reactor.
2020 13th International Conference on Developments in eSystems Engineering (DeSE), 13.
pp. 228-232.
ISSN 2161-1351
DOI: https://doi.org/10.1109/DeSE51703.2020.9450737
Abstract
This note presents a nonlinear control approach using dynamic neural network (DNN)-based feedback linearization (FBL) for nuclear reactor power control. The reactor model adopted in this study is based on neutronic dynamic and thermal-hydraulic models. The nonlinear plant is identified by a single-layer DNN trained using Quasi-Newton and Interior-Point methods. The feedback linearization scheme is combined with a Proportional-Integral (P-I) controller and simulations show good performance of the proposed controller. The efficacy of the controller is evaluated in the load-following mode of operation. Moreover, the fault-tolerance performance of the proposed approach is tested.
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Identification Number: | https://doi.org/10.1109/DeSE51703.2020.9450737 |
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Status: | Published |
Refereed: | Yes |
Publisher: | IEEE |
Additional Information: | © 2021 IEEE. Personal use of this material is permitted. Permission from IEEE must be obtained for all other uses, in any current or future media, including reprinting/republishing this material for advertising or promotional purposes, creating new collective works, for resale or redistribution to servers or lists, or reuse of any copyrighted component of this work in other works. |
Depositing User (symplectic) | Deposited by Naimi, Amine |
Date Deposited: | 04 Oct 2021 11:56 |
Last Modified: | 10 Jul 2024 22:25 |
Event Title: | Developments in eSystems Engineering |
Event Dates: | 14 December 2020 - 17 December 2020 |
Item Type: | Article |
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