Assessment of Grid-Tied Renewable Energy Systems’ Voltage Support Capability Under Various Reactive Power Compensation Devices
Abstract
1. Introduction
2. Voltage Support Strength Enhancement Mechanisms in Renewable Grid-Connected Systems Under Diverse Compensation Devices
2.1. Static Var Compensator Enhancement Mechanism
2.2. Static Var Generator Enhancement Mechanism
2.3. Synchronous Condenser Enhancement Mechanism
3. Quantitative Assessment of Voltage Support Strength in Grid-Connected Renewable Energy Stations
3.1. Short-Circuit Ratio Index for Voltage Support Strength of Renewable Energy Power Stations Under Reactive Power Compensation
3.2. Calculation Method of CSCR for Renewable Power Stations with Reactive Compensators
3.3. Quantitative Analysis of Voltage Support Strength in Grid-Tied Renewable Energy Stations
- When , or , the developed renewable power grid-connected system for the single-feed system is unstable. The stability margin increases with system instability; a system is in a stable condition when , which means . The stability margin increases with system security.
- In the case of the new energy multi-feed system, when , meaning that , the system is unstable; the more unstable the system, the larger the stability margin ; when , meaning that , the system is stable; the more stable the system, the larger the stability margin .
4. Example Analysis
4.1. Stability Assessment of the System After Reactive Power Compensation
4.2. Comparative Analysis of Renewably Constructed Energy System Stability Under Different Reactive Power Compensation Devices
5. Conclusions
- Reactive power compensation is analyzed, and equations for the appropriate SCR and CSCR are derived while fully accounting for the impact of actual operating factors. Based on the SCR calculation procedure, the specific effects of each reactive power compensation technique on SCR computation are examined in detail. Subsequently, the influence of each reactive power compensation method on the increased energy consumption capacity is thoroughly explored. A reliability margin is introduced to quantitatively assess the system’s security levels comprehensively. Example results verify the accuracy and practical effectiveness of the proposed methods.
- The example results clearly demonstrate that all three reactive power compensation devices influence voltage support capacity. Among them, the synchronous condenser has the most significant impact on voltage support strength; it directly modifies the self-admittance of the access point, thereby effectively increasing the node’s MRSCR value substantially.
- The stability margin of the short-circuit ratio (SCR) is a crucial indicator for assessing the capacity of power systems to integrate renewable energy. It defines the additional capacity that can be accommodated by renewable energy sources while ensuring the stable operation of the system. This surplus capacity is directly related to the increase in the system’s transferable power capacity. The higher the stability margin, the greater the amount of renewable energy that the system can transmit through the transmission network without exceeding stability limits. Consequently, the stability margin of the SCR not only provides a quantitative basis for evaluating the acceptance capacity of existing systems for renewable energy but also serves as an important reference for engineering practices. This includes determining the appropriate scale for new energy grid connections during the planning phase, optimizing grid topology, and configuring reactive power compensation.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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AC System Impedance | Branch 1 | Branch 2 | Branch 3 |
---|---|---|---|
Node | MRSCR | CSCR | ||
---|---|---|---|---|
1 | 2.085 | 2.055 | 1.46% | |
2 | 1.893 | 1.891 | 0.11% | |
3 | 1.893 | 1.891 | 0.11% | |
1 | 2.008 | 1.852 | 8.42% | |
2 | 1.817 | 1.803 | 0.78% | |
3 | 1.817 | 1.803 | 0.78% | |
1 | 1.911 | 1.663 | 14.91% | |
2 | 1.723 | 1.697 | 1.53% | |
3 | 1.723 | 1.697 | 1.53% |
Renewable Energy Power Plant | Original System | SVC | SVG | Synchronous Compensator |
---|---|---|---|---|
SD | 1.806 | 1.851 | 1.951 | 2.474 |
DY | 1.880 | 1.948 | 2.128 | 3.005 |
HZ | 1.981 | 2.041 | 2.137 | 3.126 |
BY | 1.874 | 1.909 | 2.072 | 3.183 |
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Cao, J.; Liu, M.; Ma, Q.; Fan, J.; Song, D.; Zhou, X.; Dai, J.; Wu, H. Assessment of Grid-Tied Renewable Energy Systems’ Voltage Support Capability Under Various Reactive Power Compensation Devices. Energies 2025, 18, 3880. https://doi.org/10.3390/en18143880
Cao J, Liu M, Ma Q, Fan J, Song D, Zhou X, Dai J, Wu H. Assessment of Grid-Tied Renewable Energy Systems’ Voltage Support Capability Under Various Reactive Power Compensation Devices. Energies. 2025; 18(14):3880. https://doi.org/10.3390/en18143880
Chicago/Turabian StyleCao, Jie, Mingshun Liu, Qinfeng Ma, Junqiu Fan, Dongkuo Song, Xia Zhou, Jianfeng Dai, and Hao Wu. 2025. "Assessment of Grid-Tied Renewable Energy Systems’ Voltage Support Capability Under Various Reactive Power Compensation Devices" Energies 18, no. 14: 3880. https://doi.org/10.3390/en18143880
APA StyleCao, J., Liu, M., Ma, Q., Fan, J., Song, D., Zhou, X., Dai, J., & Wu, H. (2025). Assessment of Grid-Tied Renewable Energy Systems’ Voltage Support Capability Under Various Reactive Power Compensation Devices. Energies, 18(14), 3880. https://doi.org/10.3390/en18143880