Fault Ride-Through Techniques for Permanent Magnet Synchronous Generator Wind Turbines (PMSG-WTGs): A Systematic Literature Review
Abstract
:1. Introduction
2. Literature Review Method
3. Wind Energy Conversion Systems
- Due to the lack of a gearbox, maintenance costs are lower.
- Removing gears and bearings, which are the primary sources of generator failures, results in improved dependability and an increased lifespan [25].
- Lower weight.
- High energy yield and efficiency.
3.1. PMSG Wind Turbine Modeling
3.2. Aerodynamic Modeling
3.3. PMSG Modeling
4. Modern Grid Codes
PMSG-FRT Requirements
5. Fault Ride-Through in the Context of PMSG WTG
5.1. A Bibliometric Analysis of PMSG FRT Field
- Using a software-based FRT technique with internal control changes, increasing system complexity.
- The hardware-based FRT approach necessitates the purchase of extra hardware, increasing the system’s cost.
- A hybrid solution integrates FRT techniques from the hardware and software.
5.2. Software Solutions
5.3. Hardware Solutions
5.3.1. Crowbar Method
5.3.2. DC-Link Chopper Method
5.3.3. Flexible AC Transmission System Methods
5.3.4. Energy Storage Methods
5.3.5. Fault Current Limiter-Based LVRT Methods
5.4. Hybrid LVRT Techniques
5.5. Financial Suitability
6. Conclusions
Future Research Scope
- It is adequate to utilize properly tuned controllers during mild voltage drops. Protective hardware is required for extreme voltage drops. A hybrid technique is advised to reduce the hardware rating and improve system dependability.
- Software solution implementation is cheaper than most hardware methods suggest in the literature. Meanwhile, combining a crowbar and a DC-link chopper seems to be the most cost-effective hardware option. They successfully safeguard the converter and DC-link capacitor but cannot provide the grid’s reactive power needs.
- Previous research only targeted voltage dips at the PCC, neglecting propagation from the transmission grid to the low voltage level.
- With more microgrids and smart grids at the distribution level, more research may study the IMPACT of voltage disturbance on the overall system and recommend solutions to improve the LVRT.
- To fully comprehend the system’s efficacy in any given scenario, it is necessary to conduct more research using field data to examine the effects of grid disruptions on PMSG wind turbines.
- The rising popularity of machine learning and its many potential uses, as well as the wealth of available system information, suggest that future research should explore the possibility of using such methods to improve performance forecasting and LVRT.
- The application of nanomaterials has made superconducting materials less expensive. Hence, more research should focus on its application with other ancillary services to enhance PMSG LVRTs.
Author Contributions
Funding
Conflicts of Interest
References
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Reference | Solution |
---|---|
[52,53,54,55] | Stored rotor kinetic energy technique |
[56] | Whale optimization technique |
[57] | Least mean and square root of exponential (LMSRE) algorithm |
[45,58] | Sliding mode control |
[59] | Artificial intelligence |
[60,61] | Machine parameters varying technique |
[62] | Linear active disturbance rejection control |
[49,63] | A grey wolf optimization of conventional PI controllers |
[64,65,66] | Feedback linearization-based controller |
[67,68,69,70,71] | A fuzzy controller |
[72,73,74,75,76] | Pitch angle control |
[39,50,77,78,79] | Model predictive controller |
[80,81] | A fast reactive current controller |
[82] | PI control of speed (Ω) and torque (T) |
[83] | Optimized PI-controller parameters based ant lion optimizer (ALO) |
[84] | Torsional active damping controller |
[85,86] | Adaptive DC-link voltage control |
[87] | Lyapunov and passivity theories |
[80,88] | Torque control |
[89] | Extended Kalman filter state estimation technique |
[72,90] | Virtual synchronous machine technique |
[51] | Proportional resonant (PR) controller |
[40] | Peak current limiter |
[91,92] | Active power priority control strategy |
[93] | Dynamic current feed-forward mechanism |
[94] | Exchange of converter roles |
[95] | Advanced nonlinear backstepping control |
[96] | De-loading droop technique |
[97,98] | Virtual automatic voltage regulator |
[99,100] | Reconfigurable parallel wind power converters |
[101] | Current oscillation cancellation scheme |
[102] | Interval type-2 fuzzy logic control (IT-2 FLC) method |
Reference | Solution |
---|---|
[106,133,134] | Crowbar method |
[109,110,120,135,136,137,138,139,140,141] | Chopper resistor technique |
[142] | Electromagnetic coupler method |
[111,143,144,145,146,147] | FACTS devices |
[104] | Crowbar and FACTS |
[118,147,148] | Energy storage systems and fault current prohibitors |
[47,116,120,149] | Energy storage systems |
[127,129,130,150,151,152,153,154,155,156,157] | Fault current prohibitors |
[158,159,160] | Supercapacitor energy storage |
[46] | Current source inverter technique |
[161] | Sic-based inverter technique |
[162] | Quasi-Z source inverter technique |
[163,164] | Multi-point clamped technique |
[165,166] | Super magnetic energy storage systems |
[167] | PV support technique |
[168] | DFIG support |
[169] | Parallel capacitor technique |
Reference | Methodology |
---|---|
[170] | Superconducting fault current limiter (SFCL) cum modified control strategy |
[123] | Energy Storage cum virtual resistor method |
[107] | Rotor Inertia cum crowbar technique |
[171,172] | Optimization techniques and braking chopper |
[125] | Supercapacitor cum coordinated control technique |
[173] | Energy storage source and fuzzy logic |
[174] | Crowbar and role interchange of converters |
FRT Scheme | Cost |
---|---|
Energy storage devices/batteries | High |
DC chopper | cheap |
FACTS | Very high |
Crowbar | cheap |
Machine and grid-side converters | Moderate |
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Morgan, E.F.; Abdel-Rahim, O.; Megahed, T.F.; Suehiro, J.; Abdelkader, S.M. Fault Ride-Through Techniques for Permanent Magnet Synchronous Generator Wind Turbines (PMSG-WTGs): A Systematic Literature Review. Energies 2022, 15, 9116. https://doi.org/10.3390/en15239116
Morgan EF, Abdel-Rahim O, Megahed TF, Suehiro J, Abdelkader SM. Fault Ride-Through Techniques for Permanent Magnet Synchronous Generator Wind Turbines (PMSG-WTGs): A Systematic Literature Review. Energies. 2022; 15(23):9116. https://doi.org/10.3390/en15239116
Chicago/Turabian StyleMorgan, Ernest F., Omar Abdel-Rahim, Tamer F. Megahed, Junya Suehiro, and Sobhy M. Abdelkader. 2022. "Fault Ride-Through Techniques for Permanent Magnet Synchronous Generator Wind Turbines (PMSG-WTGs): A Systematic Literature Review" Energies 15, no. 23: 9116. https://doi.org/10.3390/en15239116
APA StyleMorgan, E. F., Abdel-Rahim, O., Megahed, T. F., Suehiro, J., & Abdelkader, S. M. (2022). Fault Ride-Through Techniques for Permanent Magnet Synchronous Generator Wind Turbines (PMSG-WTGs): A Systematic Literature Review. Energies, 15(23), 9116. https://doi.org/10.3390/en15239116