DC-AC Converter with Dynamic Voltage Restoring Ability Based on Self-Regulated Phase Estimator-DQ Algorithm: Practical Modeling and Performance Evaluation
Abstract
:1. Introduction
- Propose a DC-AC converter/DVR based on SRPE to improve the power quality of the grid.
- Propose SRPE and appropriately replace the use of PLL in DC-AC converter/DVR applications that eliminates the use of standard LPFs and PI controllers while addressing grid voltage issues such as voltage sag/swell, imbalance, and distortion.
- SRPE-based DC-AC converter/DVR is utilized to decrease structural complexity and computing cost while also improving power quality, transient responsiveness, and grid stability.
- Verify the proposed DC-AC converter/DVR’s functionality by conducting proper simulation and laboratory experiments.
2. Methods
2.1. Problem Formulation
2.2. Proposed Solution
2.3. SRPE’s Dynamic Reaction in Comparison to Traditional PLLs
2.4. Reference Voltage Generation
3. Simulation Results and Discussions
3.1. Voltage Sag Compensation Using SRPE Mechanism
3.2. Voltage Swell Compensation Using SRPE Mechanism
3.3. Voltage Harmonic Compensation Using SRPE Mechanism
3.4. Voltage Unbalance Compensation Using SRPE Mechanism
4. Experimental Validation and Results
4.1. Scenario 1: Voltage Sag Compensation Using SRPE Mechanism
4.2. Scenario 2: Voltage Swell Compensation Using SRPE Mechanism
4.3. Scenario 3: Voltage Harmonic Compensation Using SRPE Mechanism
4.4. Scenario 3: Voltage Unbalance Compensation Using SRPE Mechanism
5. Comparative Analysis
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
E | phase error of the PLL | |
F | loop filter’s transfer function for PLL | |
K | kp | proportional gain of the PI controller for PLL |
ki | integral gain of the PI controller for PLL | |
kPE | phase detector gain for PLL | |
kVCO | voltage-controlled oscillator gain for PLL | |
U | Uxy | instantaneous input signals for synchronous reference framework |
input signals in the αβ domain for SRPE | ||
V | Vxy | instantaneous output signals for synchronous reference framework |
three-phase grid voltages | ||
grid voltages in dq-frame | ||
grid voltages in αβ-frame | ||
fundamental components of grid voltages in αβ-frame | ||
disrupted components of grid voltages in αβ-frame | ||
generated three-phase standard voltage signals | ||
generated three-phase standard voltage signals in dq-frame | ||
load voltages in dq-frame | ||
DC-AC converter/DVR’s three-phase injected voltages | ||
Greek and others | damping factor for SRPE | |
cut-off frequency for SRPE | ||
synchronizing elements generated by SRPE | ||
synchronizing elements generated by SRPE |
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Specification | Value/Unit |
---|---|
Grid frequency | 50 Hz |
Line-to-line RMS voltage | 100 V |
AC load (R) | 80 Ω |
Line impedance (R-LI) | (1 Ω−1 mH) |
Active filter rating | 1.2 kVA |
Passive-filter (Lfabc) | 5 mH |
Switching types | Infineon GP35B60PD |
Switching frequency | 10 kHz |
Category | [9] | [10] | [11] | [12] | [13] | [25] | [26] | [27] | [28] | Proposed |
---|---|---|---|---|---|---|---|---|---|---|
Controller complexity | Complex | Complex | Simple | Simple | Simple | Simple | Complex | Simple | Simple | Simple |
Grid sync | Conventional PLL | Conventional PLL | Conventional PLL | Not mentioned | Conventional PLL | Conventional PLL | Conventional PLL | Conventional PLL | Conventional PLL | SRPE |
Harmonic robustness | √ | √ | ||||||||
Additional PI | Yes | No | No | Yes | No | Yes | Yes | Yes | No | No |
Reference voltage generation method | DQ | DQ | DQ | PI | Dual-PQ | DQ | DQ | DQ | DQ | DQ |
Weight factor method | Not applicable | ANFIS | Not applicable | Manual tuning | Not applicable | Not applicable | ANFIS | Manual tuning | Not applicable | Not applicable |
Passive filter count | 9 | 3 | 3 | 6 | 6 | 9 | 6 | 6 | 9 | 3 |
Low-pass filter | Yes | No | Yes | No | No | No | No | No | No | No |
THD profile | Not mentioned | Not mentioned | Not mentioned | Not mentioned | Moderate | Good | Good | Moderate | Not mentioned | Excellent |
Hardware validation | No | No | No | Yes | Yes | Yes | Yes | No | No | Yes |
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Hasan, K.; Othman, M.M.; Meraj, S.T.; Rahman, M.S.; Lipu, M.S.H.; Kotsampopoulos, P. DC-AC Converter with Dynamic Voltage Restoring Ability Based on Self-Regulated Phase Estimator-DQ Algorithm: Practical Modeling and Performance Evaluation. Electronics 2023, 12, 523. https://doi.org/10.3390/electronics12030523
Hasan K, Othman MM, Meraj ST, Rahman MS, Lipu MSH, Kotsampopoulos P. DC-AC Converter with Dynamic Voltage Restoring Ability Based on Self-Regulated Phase Estimator-DQ Algorithm: Practical Modeling and Performance Evaluation. Electronics. 2023; 12(3):523. https://doi.org/10.3390/electronics12030523
Chicago/Turabian StyleHasan, Kamrul, Muhammad Murtadha Othman, Sheikh Tanzim Meraj, Md. Siddikur Rahman, Molla Shahadat Hossain Lipu, and Panos Kotsampopoulos. 2023. "DC-AC Converter with Dynamic Voltage Restoring Ability Based on Self-Regulated Phase Estimator-DQ Algorithm: Practical Modeling and Performance Evaluation" Electronics 12, no. 3: 523. https://doi.org/10.3390/electronics12030523
APA StyleHasan, K., Othman, M. M., Meraj, S. T., Rahman, M. S., Lipu, M. S. H., & Kotsampopoulos, P. (2023). DC-AC Converter with Dynamic Voltage Restoring Ability Based on Self-Regulated Phase Estimator-DQ Algorithm: Practical Modeling and Performance Evaluation. Electronics, 12(3), 523. https://doi.org/10.3390/electronics12030523