Stability Comparison of Grid-Connected Inverters Considering Voltage Feedforward Control in Different Domains
Abstract
:1. Introduction
2. GCI System Structure with Different Domain Controls
3. Sequence Admittance Modeling of Grid-Connected Inverter
3.1. Phase-Locked Loop Modeling
3.2. Voltage Outer Loop Modeling
3.3. Sequential Admittance Modeling of GCI by PR
3.4. Sequence Admittance Modeling of Grid-Connected Inverter Controlled by PI
- (1)
- Whether or not the VFL (voltage feedforward link) is considered, the frequency-coupled admittance matrix in different domains aligns with the measured values, confirming the theoretical model’s accuracy.
- (2)
- Under two different domain current controls, irrespective of VFL, the amplitude values of the diagonal elements Y11 and Y22 are similar to those of the non-diagonal elements Y12 and Y21, highlighting the significance of the frequency coupling effect.
- (3)
4. Stability Analysis of GCI Controlled by Different Domains
4.1. Influence of Power Grid Strength on Stability
4.2. Impact of PLL Bandwidth BWPLL
4.3. Influence of DC Voltage Loop Bandwidth BWv
5. Experimental Verification
5.1. Influence of Power Grid Strength on the Stability of GCI Systems
5.2. Influence of Voltage Outer Loop Bandwidth on the Stability of GCI Systems
5.3. Influence of PLL Bandwidth on the Stability of GCI Systems
6. Conclusions
- (1)
- Regardless of whether voltage feedforward control is considered, adopting PI control and PR current control, considering the frequency coupling characteristics, will establish a more accurate frequency-coupled admittance model.
- (2)
- With voltage feedforward control, the admittance characteristics of GCI systems controlled by PI and PR are similar. Without voltage feedforward control, the frequency-coupled admittance models of GCI systems under PI and PR control differ significantly in the baseband.
- (3)
- To enhance the stability of the GCI system, the bandwidths of the phase-locked loop and the voltage outer loop should be minimized, provided that dynamic performance requirements are met.
- (4)
- In conditions of high penetration, voltage feedforward control diminishes the stability of GCI systems under both PI and PR control, increasing the likelihood of instability. Moreover, if a GCI system controlled by PI shows insufficient stability, employing PR control can marginally enhance stability without altering the mainline parameters and control settings.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Parameters | Values | Parameters | Values |
---|---|---|---|
Vdc | 700 V | Ipv | 14.29 A |
Vg | 220 V | Qref | 0 Kvar |
Lf | 2 mH | Decoupling coefficient Kd | 1/350 |
Cf | 20 uF | Voltage feedforward coefficient Kf | 1/350 |
Rf | 1 Ω | PI parameter of PLL | 0.266/10.99 |
Rg | 0.2 Ω | Voltage loop PI parameter | 1.72/228.69 |
Lg | 3 mH | Current loop PI parameter | 0.0343/45.714 |
ωv, ωi | 2π·4000 | KPWM | 0.5 |
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Qian, W.; Yin, J.; Chen, Z. Stability Comparison of Grid-Connected Inverters Considering Voltage Feedforward Control in Different Domains. Appl. Sci. 2024, 14, 9026. https://doi.org/10.3390/app14199026
Qian W, Yin J, Chen Z. Stability Comparison of Grid-Connected Inverters Considering Voltage Feedforward Control in Different Domains. Applied Sciences. 2024; 14(19):9026. https://doi.org/10.3390/app14199026
Chicago/Turabian StyleQian, Weichen, Jun Yin, and Ziang Chen. 2024. "Stability Comparison of Grid-Connected Inverters Considering Voltage Feedforward Control in Different Domains" Applied Sciences 14, no. 19: 9026. https://doi.org/10.3390/app14199026
APA StyleQian, W., Yin, J., & Chen, Z. (2024). Stability Comparison of Grid-Connected Inverters Considering Voltage Feedforward Control in Different Domains. Applied Sciences, 14(19), 9026. https://doi.org/10.3390/app14199026