LAPSE:2023.16883
Published Article

LAPSE:2023.16883
PV-Supercapacitor Cascaded Topology for Primary Frequency Responses and Dynamic Inertia Emulation
March 3, 2023
Abstract
Owing to rapid increase in PV penetration without inherent inertia, there has been an unremitting deterioration of the effective inertia of the existing power systems. This may pose a serious threat to the stability of power systems during disturbances if not taken care of. Hence, the problem of how to emulate Synthetic Inertia (SI) in PV Systems (PVS) to retain their frequency stability demands attention. Super Capacitor (SC)-based storage become an attractive option over the other energy storage types because of its high-power density, burst power handling capability, faster response and longer life cycle. Considering this, the authors here propose a novel PV-SC Cascaded Topology (PSCT) as a cost-effective approach to emulate SI by integrating a low voltage SC to a high voltage grid-connected PVS. The proposed PSCT helps in operating the SC as a voltage source rather than a current source. Thus, it eliminates the high gain requirements of the SC interfacing converters. The aim is to target two main frequency response services, i.e., Primary Frequency Response (PFR) and Synthetic Inertial Response (SIR), using a novel common control scheme, but without affecting any other energy intensive services. The authors introduced a Droop-Inspired (DI) method with an adjustable inertia constant to emulate dynamic inertia so that a wider range of Rate of Change of Frequency (RoCoF) values can be serviced with a limited storage. A very streamlined analysis was also carried out for sizing of the SC stage based on a simple Three-Point Linearization (TPL) technique and DI technique with a limited knowledge of the disturbance parameters. The whole system was initially validated in a MATLAB Simulink environment and later confirmed with the OPAL-RT Real-Time Simulator. The investigated response was subject to variation in terms of control parameters, changes in solar irradiance, grid frequency variation, etc.
Owing to rapid increase in PV penetration without inherent inertia, there has been an unremitting deterioration of the effective inertia of the existing power systems. This may pose a serious threat to the stability of power systems during disturbances if not taken care of. Hence, the problem of how to emulate Synthetic Inertia (SI) in PV Systems (PVS) to retain their frequency stability demands attention. Super Capacitor (SC)-based storage become an attractive option over the other energy storage types because of its high-power density, burst power handling capability, faster response and longer life cycle. Considering this, the authors here propose a novel PV-SC Cascaded Topology (PSCT) as a cost-effective approach to emulate SI by integrating a low voltage SC to a high voltage grid-connected PVS. The proposed PSCT helps in operating the SC as a voltage source rather than a current source. Thus, it eliminates the high gain requirements of the SC interfacing converters. The aim is to target two main frequency response services, i.e., Primary Frequency Response (PFR) and Synthetic Inertial Response (SIR), using a novel common control scheme, but without affecting any other energy intensive services. The authors introduced a Droop-Inspired (DI) method with an adjustable inertia constant to emulate dynamic inertia so that a wider range of Rate of Change of Frequency (RoCoF) values can be serviced with a limited storage. A very streamlined analysis was also carried out for sizing of the SC stage based on a simple Three-Point Linearization (TPL) technique and DI technique with a limited knowledge of the disturbance parameters. The whole system was initially validated in a MATLAB Simulink environment and later confirmed with the OPAL-RT Real-Time Simulator. The investigated response was subject to variation in terms of control parameters, changes in solar irradiance, grid frequency variation, etc.
Record ID
Keywords
artificial inertia, dynamic inertia emulation, frequency response services, PV-SC series cascaded topology, RoCoF, three-point linearization technique
Subject
Suggested Citation
Karpana S, Batzelis E, Maiti S, Chakraborty C. PV-Supercapacitor Cascaded Topology for Primary Frequency Responses and Dynamic Inertia Emulation. (2023). LAPSE:2023.16883
Author Affiliations
Karpana S: Department of Electrical Engineering, Indian Institute of Technology Kharagpur, Kharagpur 721302, India [ORCID]
Batzelis E: School of Electronics and Computer Science, University of Southampton, Southampton SO17 1BJ, UK [ORCID]
Maiti S: Department of Electrical Engineering, Indian Institute of Technology Kharagpur, Kharagpur 721302, India
Chakraborty C: Department of Electrical Engineering, Indian Institute of Technology Kharagpur, Kharagpur 721302, India
Batzelis E: School of Electronics and Computer Science, University of Southampton, Southampton SO17 1BJ, UK [ORCID]
Maiti S: Department of Electrical Engineering, Indian Institute of Technology Kharagpur, Kharagpur 721302, India
Chakraborty C: Department of Electrical Engineering, Indian Institute of Technology Kharagpur, Kharagpur 721302, India
Journal Name
Energies
Volume
14
Issue
24
First Page
8347
Year
2021
Publication Date
2021-12-10
ISSN
1996-1073
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Original Submission
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PII: en14248347, Publication Type: Journal Article
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https://doi.org/10.3390/en14248347
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