LAPSE:2023.6908v1
Published Article

LAPSE:2023.6908v1
Flexible Droop Coefficient-Based Inertia and Voltage Cascade Control for Isolated PV-Battery DC Microgrid
February 24, 2023
Abstract
To realize the coordinated distribution of power in the multi-source system, maintain the charging balance among energy storage units, and improve the anti-interference capability of the bus voltage, a cascade control for an isolated PV-battery DC microgrid is proposed in this paper. First, to provide inertia for the microgrid so that it can cope with external disturbance, the parameters of the droop curve were adjusted by correlating the bus voltage variation rate, which improved the conventional droop control. Secondly, a nonsingular terminal sliding mode control was proposed to track voltage and current references and, thus, enhance the robustness of the DC microgrid. Moreover, the high-frequency chattering of the sliding mode control was inhibited with the exponential reaching law, and the Lyapunov function was utilized to verify the stability of the proposed nonsingular terminal sliding mode control method. Both the simulated and experimental results verified the correctness and effectiveness of the proposed method.
To realize the coordinated distribution of power in the multi-source system, maintain the charging balance among energy storage units, and improve the anti-interference capability of the bus voltage, a cascade control for an isolated PV-battery DC microgrid is proposed in this paper. First, to provide inertia for the microgrid so that it can cope with external disturbance, the parameters of the droop curve were adjusted by correlating the bus voltage variation rate, which improved the conventional droop control. Secondly, a nonsingular terminal sliding mode control was proposed to track voltage and current references and, thus, enhance the robustness of the DC microgrid. Moreover, the high-frequency chattering of the sliding mode control was inhibited with the exponential reaching law, and the Lyapunov function was utilized to verify the stability of the proposed nonsingular terminal sliding mode control method. Both the simulated and experimental results verified the correctness and effectiveness of the proposed method.
Record ID
Keywords
cascade control, droop control, inertia control, isolated PV-battery DC microgrid, nonsingular terminal sliding mode
Subject
Suggested Citation
Yin Z, Xue S, Wang Z, Yu F, Chen H. Flexible Droop Coefficient-Based Inertia and Voltage Cascade Control for Isolated PV-Battery DC Microgrid. (2023). LAPSE:2023.6908v1
Author Affiliations
Yin Z: Xi’an Dynamic Inspection and Testing Co., Ltd., Xi’an 710000, China
Xue S: Xi’an Dynamic Inspection and Testing Co., Ltd., Xi’an 710000, China
Wang Z: Xi’an Dynamic Inspection and Testing Co., Ltd., Xi’an 710000, China
Yu F: School of Electrical Engineering, Nantong University, Nantong 226019, China [ORCID]
Chen H: Nanjing Moral Testing and Certification Co., Ltd., Nanjing 211106, China
Xue S: Xi’an Dynamic Inspection and Testing Co., Ltd., Xi’an 710000, China
Wang Z: Xi’an Dynamic Inspection and Testing Co., Ltd., Xi’an 710000, China
Yu F: School of Electrical Engineering, Nantong University, Nantong 226019, China [ORCID]
Chen H: Nanjing Moral Testing and Certification Co., Ltd., Nanjing 211106, China
Journal Name
Energies
Volume
15
Issue
24
First Page
9318
Year
2022
Publication Date
2022-12-08
ISSN
1996-1073
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Original Submission
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PII: en15249318, Publication Type: Journal Article
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LAPSE:2023.6908v1
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https://doi.org/10.3390/en15249318
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