Robust disturbance rejection control of grid-connected fuel cell converters with grid support ability under unbalanced faults
This work proposes a high-performance, robust and low-complexity control strategy for grid-connected fuel cell converters that operate under several performance limiting conditions such as grid faults, parametric and modeling uncertainties, unknown disturbances, step changes and noise. The strategy...
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| Vydané v: | Energy systems (Berlin. Periodical) Ročník 11; číslo 3; s. 673 - 698 |
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| Hlavní autori: | , |
| Médium: | Journal Article |
| Jazyk: | English |
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Berlin/Heidelberg
Springer Berlin Heidelberg
01.08.2020
Springer Nature B.V |
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| ISSN: | 1868-3967, 1868-3975 |
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| Abstract | This work proposes a high-performance, robust and low-complexity control strategy for grid-connected fuel cell converters that operate under several performance limiting conditions such as grid faults, parametric and modeling uncertainties, unknown disturbances, step changes and noise. The strategy enables the fuel cell-based distributed generators to ride through balanced and unbalanced grid faults and fulfills the modern grid code requirements that mandate them to actively support the grid in case of contingencies. The controller is built by combining disturbance rejection control and repetitive control, both having simple structures and attractive performance features. Moreover, during grid faults, the strategy manages to keep the active power delivered to the grid constant and the phase currents sinusoidal, without a phase locked loop or the positive and negative sequence components of the unbalanced grid voltages or currents. As a result, the controller’s computational and structural complexity are reduced without compromising its performance. Several test cases are run using the
SimPowerSystems
TM
toolbox of MATLAB/Simulink computing environment to demonstrate the response of the proposed strategy and ascertain its performance under grid faults, parametric uncertainties, noise and unknown disturbances. |
|---|---|
| AbstractList | This work proposes a high-performance, robust and low-complexity control strategy for grid-connected fuel cell converters that operate under several performance limiting conditions such as grid faults, parametric and modeling uncertainties, unknown disturbances, step changes and noise. The strategy enables the fuel cell-based distributed generators to ride through balanced and unbalanced grid faults and fulfills the modern grid code requirements that mandate them to actively support the grid in case of contingencies. The controller is built by combining disturbance rejection control and repetitive control, both having simple structures and attractive performance features. Moreover, during grid faults, the strategy manages to keep the active power delivered to the grid constant and the phase currents sinusoidal, without a phase locked loop or the positive and negative sequence components of the unbalanced grid voltages or currents. As a result, the controller’s computational and structural complexity are reduced without compromising its performance. Several test cases are run using the SimPowerSystemsTM toolbox of MATLAB/Simulink computing environment to demonstrate the response of the proposed strategy and ascertain its performance under grid faults, parametric uncertainties, noise and unknown disturbances. This work proposes a high-performance, robust and low-complexity control strategy for grid-connected fuel cell converters that operate under several performance limiting conditions such as grid faults, parametric and modeling uncertainties, unknown disturbances, step changes and noise. The strategy enables the fuel cell-based distributed generators to ride through balanced and unbalanced grid faults and fulfills the modern grid code requirements that mandate them to actively support the grid in case of contingencies. The controller is built by combining disturbance rejection control and repetitive control, both having simple structures and attractive performance features. Moreover, during grid faults, the strategy manages to keep the active power delivered to the grid constant and the phase currents sinusoidal, without a phase locked loop or the positive and negative sequence components of the unbalanced grid voltages or currents. As a result, the controller’s computational and structural complexity are reduced without compromising its performance. Several test cases are run using the SimPowerSystems TM toolbox of MATLAB/Simulink computing environment to demonstrate the response of the proposed strategy and ascertain its performance under grid faults, parametric uncertainties, noise and unknown disturbances. |
| Author | Ibrir, Salim Sabir, Adeel |
| Author_xml | – sequence: 1 givenname: Adeel orcidid: 0000-0002-1010-9101 surname: Sabir fullname: Sabir, Adeel email: adeelsabir@uohb.edu.sa organization: University of Hafr Al Batin – sequence: 2 givenname: Salim surname: Ibrir fullname: Ibrir, Salim organization: King Fahd University of Petroleum and Minerals |
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| CitedBy_id | crossref_primary_10_1002_2050_7038_12756 crossref_primary_10_1109_ACCESS_2020_3032400 crossref_primary_10_1109_TMECH_2024_3450599 crossref_primary_10_1007_s12667_022_00518_3 crossref_primary_10_1088_1757_899X_937_1_012006 |
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| Keywords | Robust control Fault ride-through Distributed generation Fuel cells Disturbance rejection control Repetitive control |
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| SubjectTerms | Complexity Controllers Converters Distributed generation Disturbances Economics and Management Energy Energy Policy Energy Systems Faults Fuel cells Fuel technology Operations Research/Decision Theory Optimization Original Paper Phase locked loops Rejection Repetitive control Robust control Strategy Uncertainty |
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| Title | Robust disturbance rejection control of grid-connected fuel cell converters with grid support ability under unbalanced faults |
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