LAPSE:2023.30949
Published Article

LAPSE:2023.30949
Grid Interconnection Modeling of Inverter Based Resources (IBR) Plant for Transient Analysis
April 17, 2023
Abstract
The increase in penetration levels of inverter-based resources (IBRs) is changing the dynamic performance of power grids of different parts of the world. IBRs are now being more and more integrated into the grid at a single connection point as an IBR plant. Due to the complex nature and dynamicity of each inverter model, it is not realistic to build and analyze full complex models of each inverter in the IBR plant. Moreover, simulating a large plant including detailed models of all the IBRs would require high computing resources as well as a long simulation time. This has been the main issue addressed in the new IEEE Std 2800-2022. This paper proposes a novel approach to model an IBR plant, which can capture the transient nature at the plant level, detailed IBR control at the inverter level, interactions of multiple IBR groups in a plant structure, and a collector system connecting the IBRs to the grid. The IBRs in the plant use a voltage source inverter topology combined with a grid-connected filter. The control structure of the IBR includes a cascaded loop control where an inner current control and outer power control are designed in the dq-reference frame, and a closed-loop phase-locked loop is used for the grid synchronization. The mathematical study is conducted first to develop aggregated plant models considering different operating scenarios of active IBRs in an IBR plant. Then, an electromagnetic transient simulation (EMT) model of the plant is developed to investigate the plant’s dynamic performance under different operating scenarios. The performance of the aggregated plant model is compared with that of a detailed plant model to prove the effectiveness of the proposed strategy. The results show that the aggregated EMT simulation model provides almost the same result as the detailed model from the plant perspective while the running time/computation burden is much lower.
The increase in penetration levels of inverter-based resources (IBRs) is changing the dynamic performance of power grids of different parts of the world. IBRs are now being more and more integrated into the grid at a single connection point as an IBR plant. Due to the complex nature and dynamicity of each inverter model, it is not realistic to build and analyze full complex models of each inverter in the IBR plant. Moreover, simulating a large plant including detailed models of all the IBRs would require high computing resources as well as a long simulation time. This has been the main issue addressed in the new IEEE Std 2800-2022. This paper proposes a novel approach to model an IBR plant, which can capture the transient nature at the plant level, detailed IBR control at the inverter level, interactions of multiple IBR groups in a plant structure, and a collector system connecting the IBRs to the grid. The IBRs in the plant use a voltage source inverter topology combined with a grid-connected filter. The control structure of the IBR includes a cascaded loop control where an inner current control and outer power control are designed in the dq-reference frame, and a closed-loop phase-locked loop is used for the grid synchronization. The mathematical study is conducted first to develop aggregated plant models considering different operating scenarios of active IBRs in an IBR plant. Then, an electromagnetic transient simulation (EMT) model of the plant is developed to investigate the plant’s dynamic performance under different operating scenarios. The performance of the aggregated plant model is compared with that of a detailed plant model to prove the effectiveness of the proposed strategy. The results show that the aggregated EMT simulation model provides almost the same result as the detailed model from the plant perspective while the running time/computation burden is much lower.
Record ID
Keywords
aggregated plant model, electromagnetic transient simulation, grid-connected filters, inverter-based resources plant, vector control
Subject
Suggested Citation
Das HS, Li S, Rahman S. Grid Interconnection Modeling of Inverter Based Resources (IBR) Plant for Transient Analysis. (2023). LAPSE:2023.30949
Author Affiliations
Das HS: Department of Electrical and Computer Engineering, The University of Alabama, Tuscaloosa, AL 35401, USA [ORCID]
Li S: Department of Electrical and Computer Engineering, The University of Alabama, Tuscaloosa, AL 35401, USA [ORCID]
Rahman S: Department of Electrical and Computer Engineering, The University of Alabama, Tuscaloosa, AL 35401, USA
Li S: Department of Electrical and Computer Engineering, The University of Alabama, Tuscaloosa, AL 35401, USA [ORCID]
Rahman S: Department of Electrical and Computer Engineering, The University of Alabama, Tuscaloosa, AL 35401, USA
Journal Name
Energies
Volume
16
Issue
7
First Page
3211
Year
2023
Publication Date
2023-04-02
ISSN
1996-1073
Version Comments
Original Submission
Other Meta
PII: en16073211, Publication Type: Journal Article
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LAPSE:2023.30949
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https://doi.org/10.3390/en16073211
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