Improved Frequency Locked Loop Based Synchronization Method for Three-Phase Grid-Connected Inverter under Unbalanced and Distorted Grid Conditions
Abstract
:1. Introduction
2. Modeling Analysis of the SOGI-FLL
3. Dynamics Analysis of the DSOGI-FLL and Its Improved Design
4. Synchronization Method Based on Multiple DSOGI-IFLL
5. Simulations and Experiments
5.1. Harmonic Detection Simulation Test
5.2. Experimental Verification
5.2.1. Performance Comparison of Frequency Detection between MDSOGI-FLL and MDSOGI-IFLL
5.2.2. Performance Comparison between MDSOGI-IFLL and Other Synchronization Methods
A. Unbalanced Voltage
B. Distorted Voltage
C. Phase Jump
D. Brief Comparison
6. Conclusions
- According to the modeling analysis of the DSOGI-FLL, the drawback of the design method for the FLL unit proposed in [24] is pointed out. Based on the analysis, an improved design (referred as IFLL) that takes the fundamental negative sequence voltage into consideration in the design is proposed. The dynamic performance of the DSOGI-IFLL is independent of the variation of both the fundamental positive and the negative sequence voltage.
- Under unbalanced grid voltage, the proposed MDSOGI-IFLL has a better transient performance than the MDSOGI-FLL in frequency detection when the grid frequency changes.
- The MDSOGI-IFLL shows the outstanding performance of the estimation of the positive- and negative-sequence components even under the extremely unbalanced and distorted grid voltage. In addition, the MDSOGI-IFLL also could be used for selective harmonic compensation, islanding detection, and so on.
Author Contributions
Funding
Conflicts of Interest
References
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Voltage Component | Value [p.u.] | ||
---|---|---|---|
Case 1 | Case 2 | Case 3 | |
Fundamental positive sequence | 0.6 | 0.6 | 0.6 |
Fundamental negative sequence | 0.2 | 0.4 | 0.6 |
5th harmonic | 0.2 | 0.2 | 0.2 |
7th harmonic | 0.15 | 0.15 | 0.15 |
11th harmonic | 0.1 | 0.1 | 0.1 |
Pros and Cons | Advantages | Disadvantages | |
---|---|---|---|
Synchronization Methods | |||
SRF-PLL | The structure of SRF-PLL is simple. It is easy to design and it can effectively detect the amplitude, phase, and frequency of the grid voltage with perfect steady-state and dynamic response under the idea grid voltage. | It is sensitive to unbalance and harmonics. | |
DDSRF-PLL | It can accurately extract the positive and negative sequence components of the voltage with good dynamic performance and good frequency adaptability even when the grid voltage is unbalanced. | Its ability to attenuate low-order harmonics is insufficient. In addition, its transient response is highly influenced by the phase-angle jumps of the input signal. | |
MCCF-PLL | The structure of MCCF is flexible. Through the cross-feedback network, it can accurately detect the information of grid voltage in the steady state even under the unbalanced and distorted grid voltage. | To obtain good performance under the distorted grid voltage, its structure will be more complex, thereby, requiring more DSP resource compared to SRF-PLL or DDSRF-PLL. Since its frequency-adaptive depends on the cascaded PLL, its transient response is highly influenced by the phase-angle jumps of the input signal. | |
MDSOGI-IFLL | It shows perfect performance under the unbalanced and distorted grid voltage. Due to the FLL, the performance of frequency detection is the best. Hence, it is relatively insensitive to phase jump. | With the number of the DSOGI used in the cross-feedback network increasing, it requires more DSP resource compared to SRF-PLL or DDSRF-PLL. |
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Ma, W.; Ouyang, S.; Xu, W. Improved Frequency Locked Loop Based Synchronization Method for Three-Phase Grid-Connected Inverter under Unbalanced and Distorted Grid Conditions. Energies 2019, 12, 1023. https://doi.org/10.3390/en12061023
Ma W, Ouyang S, Xu W. Improved Frequency Locked Loop Based Synchronization Method for Three-Phase Grid-Connected Inverter under Unbalanced and Distorted Grid Conditions. Energies. 2019; 12(6):1023. https://doi.org/10.3390/en12061023
Chicago/Turabian StyleMa, Wenjie, Sen Ouyang, and Weidong Xu. 2019. "Improved Frequency Locked Loop Based Synchronization Method for Three-Phase Grid-Connected Inverter under Unbalanced and Distorted Grid Conditions" Energies 12, no. 6: 1023. https://doi.org/10.3390/en12061023
APA StyleMa, W., Ouyang, S., & Xu, W. (2019). Improved Frequency Locked Loop Based Synchronization Method for Three-Phase Grid-Connected Inverter under Unbalanced and Distorted Grid Conditions. Energies, 12(6), 1023. https://doi.org/10.3390/en12061023