Distributed Generation Control Using Modified PLL Based on Proportional-Resonant Controller
Abstract
:1. Introduction
- A modified proportional-resonant (PR) controller is proposed to overcome reactive power sharing errors considering feeder impedance effect. This leads to a more simple implementation than other complicated approaches.
- Some modifications are applied to the conventional PLLs to develop the performance. This can help us to detect phase shift and harmonic compensation.
- The simplicity of proposed method has raised the accuracy and system response in each case study. This causes low overshoot and minimized settling time.
2. Modified PLL
3. Proposed PLL Validation
3.1. Normal Conditions
3.2. Load Change
3.3. LG Short Circuit Fault
4. System under Study with PR Controller
Stability Analysis
5. Simulation Results
5.1. First Case Study
5.2. Second Case Study
5.3. Third Case Study
5.4. Unbalancing, LG Fault, Feeder Impedance, and Load Variation
- (a)
- If the unbalancing is procurable only with one DG, the DGs must supply the unbalanced current from low capacity to high capacity one by one.
- (b)
- If there are any single phase DGs which could have supplied the defective phases, the corresponded DG must procure the unbalanced load located at this power line.
- (c)
- If there are grid-connected operation modes, since the DGs cannot supply the unbalanced current, the up-stream network participates in the condition.
6. Discussion
- -
- The computational complexity of proposed PLL is lower than the others, which causes higher system response speed.
- -
- The frequency overshoot of proposed PLL is lower than the others, which makes the more accurate solution obtainable.
- -
- The processing time of proposed PLL is not the least in all PLL models, however, it is less than two of them.
- -
- The DC offset can be considered in the proposed PLL, which will increase the system reliability.
- -
- The harmonics effects could be implemented in the proposed PLL to raise the recovering performance. The minimum THD represent the lowest THD that is measured using a RL diode-bridge load.
7. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Settling Time | SF-EP-MAF-PLL | EP-MAF-PLL |
---|---|---|
kp | kp | |
4T | 905.71 | 544.32 |
3T | 1125.42 | 700.12 |
2T | 4983.15 | 3214.56 |
Parameter | Value |
---|---|
AC grid voltage () | 380 Vrms |
AC grid frequency () | 50 Hz |
Switching frequency () | 12 kHz |
Filter resistance () | 10 mΩ |
Filter inductance () | 1.8 mH |
Filter capacitance () | 470 µF |
PLL Type | Computational Complexity | Frequency Overshoot | Processing Time (ms) | Performance Capability | |
---|---|---|---|---|---|
DC Offset | Harmonics (Minimum THD) | ||||
αβ-PLL | Low | Low | 3.14 | No | No (4.18%) |
dq-SRF-PLL | High | High | 8.91 | No | No (4.11%) |
MAF-PLL | Low | Low | 2.93 | Yes | Yes (3.78%) |
EP-MAF-PLL | Low | High | 4.62 | Yes | Yes (3.13%) |
SF-EP-MAF-PLL | Low | Low | 4.33 | Yes | Yes (1.10%) |
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Zare, A.; Moattari, M.; Melicio, R. Distributed Generation Control Using Modified PLL Based on Proportional-Resonant Controller. Appl. Sci. 2020, 10, 8891. https://doi.org/10.3390/app10248891
Zare A, Moattari M, Melicio R. Distributed Generation Control Using Modified PLL Based on Proportional-Resonant Controller. Applied Sciences. 2020; 10(24):8891. https://doi.org/10.3390/app10248891
Chicago/Turabian StyleZare, Ahmad, Mazda Moattari, and Rui Melicio. 2020. "Distributed Generation Control Using Modified PLL Based on Proportional-Resonant Controller" Applied Sciences 10, no. 24: 8891. https://doi.org/10.3390/app10248891
APA StyleZare, A., Moattari, M., & Melicio, R. (2020). Distributed Generation Control Using Modified PLL Based on Proportional-Resonant Controller. Applied Sciences, 10(24), 8891. https://doi.org/10.3390/app10248891