A Modified Variable Power Angle Control for Unified Power Quality Conditioner in a Distorted Utility Source
Abstract
:1. Introduction
- For the control of UPQC, the use of SWFA in the harmonic voltage extraction process is presented. The use of multiple filters and design complexity are not required in this proposed approach.
2. Structure of the Studied Unified Power Quality Conditioner System
3. Harmonic Identification and Reference Signal Generation
3.1. Variable Power Angle Calculation
3.2. Sliding Window with Fourier Analysis Filter
3.3. Reference Voltage Signal Generation for Series Active Power Filter
3.4. Reference Current Signal Generation for Shunt Active Power Filter
4. Processor-in-the-Loop (PIL) Simulation
4.1. Processor-in-the-Loop Setup
4.2. Test Scenarios
- Load Change—two stages of load changes. Firstly, an increase in the reactive power demand by switching to load (L2). Secondly, a nonlinear load (L3) was connected, resulting in a 25.3%THD of the load current.
- Voltage Sag—a decrease in supply voltage magnitude by 20%.
- Voltage Swell—an increase in supply voltage magnitude by 20%.
- Harmonic Voltage—20V of the 5th harmonics and 20V of the 7th harmonics are added to the source voltage, resulting in a 9.09%THD of the source voltage.
4.3. Performance Evaluation
5. Results and Discussion
5.1. Filter Performance
5.2. Unified Power Quality Conditioner Performance
5.2.1. Load Changes
5.2.2. Supply Disturbances
5.3. Power Flow Analysis
5.3.1. Active Power
5.3.2. Reactive Power
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Publication Year | Power System | Compensation Strategy | Harmonic Identification Method | Operating Conditions /Disturbances | Sharing of Load Reactive Power | ||
---|---|---|---|---|---|---|---|
Series APF | Shunt APF | Voltage Source | Load System | ||||
2007 [19] | 3P4W | proposed method | Discrete Wavelet Transform (DWT) and MRA | Discrete Wavelet Transform (DWT) and MRA |
|
| NO |
2008 [16] | 3P3W | UPQC-S | UVTG with PAC | Instantaneous pq theory |
|
| YES |
2011 [17] | 3P3W | UPQC-S | UVTG with PAC | Instantaneous pq theory |
|
| YES |
2011 [28] | 3P4W | UPQC-PSO based ANFIS | State Space Extraction | State Space Extraction |
|
| NO |
2015 [26] | 3P4W | UPQC-S | SRF theory | SRF theory |
|
| YES |
2017 [21] | 3-phase with PV | UPQC-S | UVTG with PAC | Instantaneous pq theory with GCDSC+BPF |
|
| YES |
2018 [20] | 3P3W | UPQC-S | Proposed controllable PAC | Instantaneous pq theory |
|
| YES |
2020 [23] | 3P3W | Not mentioned | Not mentioned | Proposed Adaptive LSL |
|
| NO |
2020 [25] | 3P3W | Not mentioned | SRF theory with LPF and PLL | Double closed-loop control based |
|
| NO |
2020 [24] | 3P3W | UPQC-S | Instantaneous pq theory with LCO-FLL | Instantaneous pq theory with LCO-FLL |
|
| YES |
This work | 3P3W | UPQC-S | UVTG with variable PAC | Instantaneous pq theory with SWFA filtering |
|
| YES |
Parameters | Value |
---|---|
Supply Voltage Frequency | vs = 380 VL-L, fs = 50 Hz |
Line Impedance | LL = 10 mH |
Linear Loads (L1, L2) | SL1 = 1 kW + j1kVar, SL2 = 1 kW + j1.5kVar |
Nonlinear Load (L3) | Diode Bridge Rectifier with RL3 = 160 Ω, LL3 = 0.5 H, CL3 = 40 μF |
Series APF | Ideal voltage sources |
Shunt APF | Ideal current sources |
Time (s) | Situations |
---|---|
0–0.1 | Normal supply system connected to Load L1 |
0.1–0.3 | Shunt and Series APFs ON |
0.3–0.5 | Switch to Load L2 (L1 disconnected) |
0.5–0.7 | Nonlinear Load L3 added (Load = L2 + L3) |
0.7–0.9 | 20% Voltage Sag |
0.9–1.1 | 20% Voltage Swell |
1.1–1.3 | Harmonic Voltage |
140 | 207.54 | 4.23 |
160 | 210.29 | 4.64 |
180 | 212.27 | 5.01 |
200 | 213.69 | 5.35 |
220 | 214.75 | 5.67 |
240 | 215.60 | 5.95 |
Case | Index | Load/Supply Situation | ||||||
---|---|---|---|---|---|---|---|---|
Normal Voltage | Normal Voltage | Voltage Sag | Voltage Swell | Harmonic Voltage | ||||
L1 | L2 | L2 and L3 | ||||||
Before Compensation | %THDv | 0.00 | 0.00 | 0.00 | 0.00 | 0.00 | 9.09 | |
RMS | 220 | 220 | 220 | 176 | 264 | 220 | ||
After Compensation | Without Filter [16] | %THDv | 0.00 | 0.00 | 0.00 | 0.00 | 0.00 | 3.67 |
RMS | 221.1 | 221.6 | 220.9 | 220.6 | 221.3 | 220.7 | ||
LPF (fc = 160 Hz) | %THDv | 0.02 | 0.05 | 0.00 | 0.00 | 0.00 | 1.67 | |
RMS | 220.4 | 221.1 | 220.2 | 220 | 220.4 | 220.90 | ||
With SWFA | %THDv | 0.03 | 0.04 | 0.00 | 0.01 | 0.00 | 0.55 | |
RMS | 221.1 | 221.6 | 220.9 | 220.5 | 221.3 | 220.9 |
Case | Index | Load/Supply Situation | ||||||
---|---|---|---|---|---|---|---|---|
Normal Voltage | Normal Voltage | Voltage Sag | Voltage Swell | Harmonic Voltage | ||||
L1 | L2 | L2 and L3 | ||||||
Before Compensation | %THDi | 0.00 | 0.00 | 25.31 | 25.31 | 25.31 | 22.16 | |
RMS | 2.15 | 2.69 | 4.76 | 3.81 | 5.71 | 4.75 | ||
Power Factor | 0.709 | 0.556 | 0.760 | 0.760 | 0.760 | 0.758 | ||
After Compensation | Without Filter [16] | %THDi | 0.00 | 0.07 | 1.91 | 1.53 | 2.29 | 9.59 |
RMS | 1.55 | 1.52 | 3.77 | 4.70 | 3.15 | 3.77 | ||
LPF (fc = 160 Hz) | %THDi | 0.00 | 0.05 | 1.83 | 1.47 | 2.20 | 4.78 | |
RMS | 1.61 | 1.58 | 3.92 | 4.89 | 3.27 | 3.93 | ||
With SWFA | %THDi | 0.00 | 0.07 | 1.91 | 1.53 | 2.29 | 1.93 | |
RMS | 1.55 | 1.52 | 3.77 | 4.70 | 3.15 | 3.76 | ||
Power Factor | 1.00 | 0.999 | 0.999 | 0.999 | 0.999 | 0.996 |
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Chaiyaphun, K.; Santiprapan, P.; Areerak, K. A Modified Variable Power Angle Control for Unified Power Quality Conditioner in a Distorted Utility Source. Energies 2024, 17, 2830. https://doi.org/10.3390/en17122830
Chaiyaphun K, Santiprapan P, Areerak K. A Modified Variable Power Angle Control for Unified Power Quality Conditioner in a Distorted Utility Source. Energies. 2024; 17(12):2830. https://doi.org/10.3390/en17122830
Chicago/Turabian StyleChaiyaphun, Krittapas, Phonsit Santiprapan, and Kongpol Areerak. 2024. "A Modified Variable Power Angle Control for Unified Power Quality Conditioner in a Distorted Utility Source" Energies 17, no. 12: 2830. https://doi.org/10.3390/en17122830
APA StyleChaiyaphun, K., Santiprapan, P., & Areerak, K. (2024). A Modified Variable Power Angle Control for Unified Power Quality Conditioner in a Distorted Utility Source. Energies, 17(12), 2830. https://doi.org/10.3390/en17122830