Grid Forming Inverter Modeling, Control, and Applications
Моделирование, управление и применение инверторов, формирующих сеть
2021-01-01
SCID: 54.1/ub4y44ax
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fault ride-throughgrid-forming invertersinverter-based resourcespower system stabilityweak grid
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Abstract (AI)
This paper surveys current literature on modeling methods, control techniques, protection schemes, applications, and real-world implementations pertaining to grid forming inverters (GFMIs). Electric power systems are increasingly being augmented with inverter-based resources (IBRs). While having a growing share of IBRs, conventional synchronous generator-based voltage and frequency control mechanisms are still prevalent in the power industry. Therefore, IBRs are experiencing a growing demand for mimicking the behavior of synchronous generators, which is not possible with conventional grid following inverters (GFLIs). As a solution, the concept of GFMIs is currently emerging, which is drawing increased attention from academia and the industry. This paper presents a comprehensive review of GFMIs covering recent advancements in control technologies, fault ride-through capabilities, stability enhancement measures, and practical implementations. Moreover, the challenges in adding GFMIs into existing power systems, including a seamless transition from grid-connected mode to the standalone mode and vice versa, are also discussed in detail. Recently commissioned projects in Australia, the UK, and the US are taken as examples to highlight the trend in the power industry in adding GFMIs to address issues related to weak grid scenarios. Research directions in terms of voltage control, frequency control, system strength improvement, and regulatory framework are also discussed. This paper serves as a resource for researchers and power system engineers exploring solutions to the emerging problems with high penetration of IBRs, focusing on GFMIs.
Key Findings
1
Grid-forming inverters are presented as an emerging solution for enabling inverter-based resources to emulate synchronous-generator voltage and frequency behavior, unlike conventional grid-following inverters.
2
Projects in Australia, the UK, and the US demonstrate growing industry adoption of grid-forming inverters to address weak-grid conditions, while further research is needed in voltage control, frequency control, system strength, and regulation.
3
Seamless transitions between grid-connected and standalone operation, along with integration into existing power systems, remain important technical challenges.
4
The paper provides a comprehensive survey of grid-forming inverter modeling, control, protection, applications, and real-world implementations.
5
The review covers recent advances in fault ride-through, stability enhancement, and control technologies for grid-forming inverters.
Research Object
grid-forming inverters (GFMIs) in inverter-based power systems
Research Subject
modeling, control, protection, stability, fault ride-through, operating-mode transitions, and practical integration of GFMIs under high penetration of inverter-based resources
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2021-01-01
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