Stability Assessment of Current Controller with Harmonic Compensator for LCL-Filtered Grid-Connected Inverter under Distorted Weak Grid
Abstract
:1. Introduction
- (1)
- The two typical current controllers with harmonic compensators for the LCL-filtered grid-connected inverter are implemented to analytically investigate their performances under distorted weak grid by means of the stability assessment tools and comprehensive evaluation results.
- (2)
- By the movement of closed-loop poles and disturbance rejection responses, the stability margin of each controller is well investigated. It is clearly addressed that the stability is weakened under the grid impedance variation by the addition of harmonic resonant controllers. The theoretical results are validated by simulation and experiments.
- (3)
- The full-state feedback current control method with augmented harmonic resonant compensators has well proved its robustness for a wide range of grid impedance variations (up to 14 times of grid-side inductors in the high region) by theoretical analysis and evaluation results.
- (4)
- In order to validate the presented theoretical analyses, comprehensive simulation and experimental results based on 2 kVA grid-connected inverter are presented under the grid environment including both uncertain grid impedance and distorted harmonics.
2. System Description and Current Controller
2.1. System Model of Grid-Connected Inverter
2.2. Direct Current Control Based on Capacitor Current Damping
2.3. Integral-Resonant State Feedback Control
3. Stability Analysis under Weak Grid
3.1. Frequency Response of LCL Filter under Grid Impedance Change
3.2. Closed-Loop Stability of Direct Grid Current Control with Active Damping under Grid Impedance Change
3.3. Closed-Loop Stability of Integral-Resonant State Feedback LQR Control under Grid Impedance Change
4. Performance Assessment under Distorted Weak Grid Condition
4.1. System Configuration
4.2. Simulation Results
4.3. Experimental Results
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Cases | LCL Filter Parameters | fR |
---|---|---|
Case 1 | L1 = 1.7 mH, L2 = 1.0 mH, Cf = 4.5 µF | 2991 Hz |
Case 2 | L1 = 1.7 mH, L2 = 1.0 mH, Cf = 10 µF | 2006 Hz |
Case 3 | L1 = 1.7 mH, L2 = 1.0 mH, Cf = 30 µF | 1158 Hz |
Parameters | Symbol | Value | Units |
---|---|---|---|
DC-link voltage | VDC | 400 | V |
Filter resistance | R1, R2 | 0.5 | Ω |
Nominal filter capacitance | Cf | 4.5 | μF |
10.0 | μF | ||
30.0 | μF | ||
Filter capacitor resistance | Rcf | 16 | mΩ |
Nominal inverter-side filter inductance | L1 | 1.7 | mH |
Nominal grid-side filter inductance | L2 | 1.0 | mH |
Grid voltage (line-to-line rms) | e | 220 | V |
Nominal grid frequency | fg | 60 | Hz |
LCL Filter | Grid Inductance | THD in Simulation | Harmonic Magnitude in Experiment Integral-Resonant State Feedback Control | ||||
---|---|---|---|---|---|---|---|
Integral-Resonant State Feedback Control | Direct Grid Current Control | 2 h | 5 h | 7 h | 11 h | ||
Case 1 | Lg = 0 mH | 3.96% | 3.59% | <0.8% | <0.4% | <0.2% | <0.1% |
Lg = 7 mH | 2.16% | - | <1.5% | <0.2% | <0.1% | <0.1% | |
Lg = 14 mH | 2.09% | - | <0.8% | <0.6% | <0.9% | <0.1% | |
Lg = 21 mH | - | - | - | - | - | - | |
Case 2 | Lg = 0 mH | 3.86% | 2.54% | <0.7% | <0.1% | <0.2% | <0.1% |
Lg = 7 mH | 1.12% | - | <2.2% | <0.1% | <0.2% | <0.1% | |
Lg = 14 mH | - | - | |||||
Case 3 | Lg = 0 mH | 3.04% | - | <0.7% | <0.2% | <0.2% | <0.1% |
Lg = 7 mH | - | - |
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Yoon, S.-J.; Tran, T.V.; Kim, K.-H. Stability Assessment of Current Controller with Harmonic Compensator for LCL-Filtered Grid-Connected Inverter under Distorted Weak Grid. Appl. Sci. 2021, 11, 212. https://doi.org/10.3390/app11010212
Yoon S-J, Tran TV, Kim K-H. Stability Assessment of Current Controller with Harmonic Compensator for LCL-Filtered Grid-Connected Inverter under Distorted Weak Grid. Applied Sciences. 2021; 11(1):212. https://doi.org/10.3390/app11010212
Chicago/Turabian StyleYoon, Seung-Jin, Thuy Vi Tran, and Kyeong-Hwa Kim. 2021. "Stability Assessment of Current Controller with Harmonic Compensator for LCL-Filtered Grid-Connected Inverter under Distorted Weak Grid" Applied Sciences 11, no. 1: 212. https://doi.org/10.3390/app11010212
APA StyleYoon, S. -J., Tran, T. V., & Kim, K. -H. (2021). Stability Assessment of Current Controller with Harmonic Compensator for LCL-Filtered Grid-Connected Inverter under Distorted Weak Grid. Applied Sciences, 11(1), 212. https://doi.org/10.3390/app11010212