Robust power control design for a small pressurized water reactor using an H infinity mixed sensitivity method
The objective of this study is to design a robust power control system for a small pressurized water reactor (PWR) to achieve stable power operations under conditions of external disturbances and internal model uncertainties. For this purpose, the multiple-input multiple-output transfer function mod...
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doaj-5b560d4d21174b1fb1b4ec1b9f48e61f2020-11-25T03:45:15ZengElsevierNuclear Engineering and Technology1738-57332020-07-0152714431451Robust power control design for a small pressurized water reactor using an H infinity mixed sensitivity methodXu Yan0Pengfei Wang1Junyan Qing2Shifa Wu3Fuyu Zhao4School of Nuclear Science and Technology, Xi'an Jiaotong University, Xi'an, 710049, ChinaCorresponding author.; School of Nuclear Science and Technology, Xi'an Jiaotong University, Xi'an, 710049, ChinaSchool of Nuclear Science and Technology, Xi'an Jiaotong University, Xi'an, 710049, ChinaSchool of Nuclear Science and Technology, Xi'an Jiaotong University, Xi'an, 710049, ChinaSchool of Nuclear Science and Technology, Xi'an Jiaotong University, Xi'an, 710049, ChinaThe objective of this study is to design a robust power control system for a small pressurized water reactor (PWR) to achieve stable power operations under conditions of external disturbances and internal model uncertainties. For this purpose, the multiple-input multiple-output transfer function models of the reactor core at five power levels are derived from point reactor kinetics equations and the Mann's thermodynamic model. Using the transfer function models, five local reactor power controllers are designed using an H infinity (H∞) mixed sensitivity method to minimize the core power disturbance under various uncertainties at the five power levels, respectively. Then a multimodel approach with triangular membership functions is employed to integrate the five local controllers into a multimodel robust control system that is applicable for the entire power range. The performance of the robust power system is assessed against 10% of full power (FP) step load increase transients with coolant inlet temperature disturbances at different power levels and large-scope, rapid ramp load change transient. The simulation results show that the robust control system could maintain satisfactory control performance and good robustness of the reactor under external disturbances and internal model uncertainties, demonstrating the effective of the robust power control design.http://www.sciencedirect.com/science/article/pii/S173857331930021XReactor powerMultimodelH∞ mixed sensitivityRobust control |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Xu Yan Pengfei Wang Junyan Qing Shifa Wu Fuyu Zhao |
spellingShingle |
Xu Yan Pengfei Wang Junyan Qing Shifa Wu Fuyu Zhao Robust power control design for a small pressurized water reactor using an H infinity mixed sensitivity method Nuclear Engineering and Technology Reactor power Multimodel H∞ mixed sensitivity Robust control |
author_facet |
Xu Yan Pengfei Wang Junyan Qing Shifa Wu Fuyu Zhao |
author_sort |
Xu Yan |
title |
Robust power control design for a small pressurized water reactor using an H infinity mixed sensitivity method |
title_short |
Robust power control design for a small pressurized water reactor using an H infinity mixed sensitivity method |
title_full |
Robust power control design for a small pressurized water reactor using an H infinity mixed sensitivity method |
title_fullStr |
Robust power control design for a small pressurized water reactor using an H infinity mixed sensitivity method |
title_full_unstemmed |
Robust power control design for a small pressurized water reactor using an H infinity mixed sensitivity method |
title_sort |
robust power control design for a small pressurized water reactor using an h infinity mixed sensitivity method |
publisher |
Elsevier |
series |
Nuclear Engineering and Technology |
issn |
1738-5733 |
publishDate |
2020-07-01 |
description |
The objective of this study is to design a robust power control system for a small pressurized water reactor (PWR) to achieve stable power operations under conditions of external disturbances and internal model uncertainties. For this purpose, the multiple-input multiple-output transfer function models of the reactor core at five power levels are derived from point reactor kinetics equations and the Mann's thermodynamic model. Using the transfer function models, five local reactor power controllers are designed using an H infinity (H∞) mixed sensitivity method to minimize the core power disturbance under various uncertainties at the five power levels, respectively. Then a multimodel approach with triangular membership functions is employed to integrate the five local controllers into a multimodel robust control system that is applicable for the entire power range. The performance of the robust power system is assessed against 10% of full power (FP) step load increase transients with coolant inlet temperature disturbances at different power levels and large-scope, rapid ramp load change transient. The simulation results show that the robust control system could maintain satisfactory control performance and good robustness of the reactor under external disturbances and internal model uncertainties, demonstrating the effective of the robust power control design. |
topic |
Reactor power Multimodel H∞ mixed sensitivity Robust control |
url |
http://www.sciencedirect.com/science/article/pii/S173857331930021X |
work_keys_str_mv |
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1724510538090676224 |