Research on Double-Fed Induction Generator Low Voltage Ride Through Based on Double Braking Resistors Using Fuzzy Control
Abstract
:1. Introduction
- (1)
- There are few studies on the value of series resistance. In addition to the stator and rotor voltage and current, the open circuit voltage and the heat capacity of the brake resistance are considered in this paper, and the range of the braking resistance is designed.
- (2)
- The proposed double resistance braking mode can reduce active power loss, reduce the work time of each resistor, and improve the service life of resistors under the same LVRT performance.
- (3)
- The use of a fuzzy control strategy can precisely control two braking resistors, and avoid the instability caused by continuous switching to the system in comparison with the existing methods.
2. Theoretical Analysis of a Series Dynamical Braking Resistor (SDBR) in a Double-Fed Induction Generators (DFIG)
2.1. Basic Structure of an Series Dynamical Braking Resistor (SDBR)
2.2. Mathematical Model of a Double-Fed Induction Generators (DFIG)
2.3. Impact of an SDBR on a DFIG’s Low-Voltage Ride Through (LVRT) Capability
3. Resistance Value Design Method
4. Double Resistance Switching Based on Fuzzy Control
4.1. Basic Principle of Double Resistance Switching
4.2. SDBR Switching Based on Fuzzy Control
- Step 1:
- The voltage drop depth p and the rotor speed of the DFIG are selected as the control inputs, and the output is the pulse signal that controls the bypass switch.
- Step 2:
- A higher degree of sensitivity of the more pointed membership function of the curve occurs. In this paper, the membership degree function of the triangle is selected.
- Step 3:
- As the input amount p is the voltage drop depth, three language variables were selected according to the voltage without falling, with slight fall, or with serious fall. The rotor speed range corresponding to the variable speed section of the DFIG is limited, so the language variables of the two inputs are positive big (PB), zero (Z), and negative big (NB), respectively, and the universe of discourse is [−2,2]. There are also three language variables for the output, namely PB, Z, and NB, and the universe of discourse is [−2,2] as well. The detailed relationship between the membership function and the universe of discourse is shown in Figure 6.
- Step 4:
- The common methods of fuzzy reasoning are the Mamdani method and the Sugeno method. In this paper, the Mamdani method is selected, and the mean value of the maximum method is chosen as the defuzzification method.
- Step 5:
- In order to put different resistances into the system under different fault conditions, according to the experience of experts, operators, and the results of the existing literature, the fuzzy control rules are designed as Table 1:
5. Simulation Result
5.1. Example System
5.2. Dynamic Responses Analysis
5.3. Control Strategies Comparison
6. Experimental Results
- Step 1.
- Get the parameters of the DFIG.
- Step 2.
- The value range of the series braking resistor is calculated from (13)–(16) in Section 3.
- Step 3.
- Step 4.
- Verify the heat capacity limit of the brake resistors by (17)–(18) in Section 3.
- Step 5.
- Design the conditions and logic of the double resistors switching.
- Step 6.
- Based on the basic structure of fuzzy control, the fuzzy controller of the double resistance SDBR is designed according to the steps proposed in Section 4.2.
- Step 7.
- According to the designed parameters and controllers, the system of the double braking resistors is built.
7. Conclusions
- A series SDBR on the stator side has a great influence on the open circuit voltage of the rotor, and there is a certain mathematical relationship between the stator and rotor voltage or current in the case of voltage sag. The suitable range of series resistance can be obtained by these relationships, and also by the heat dissipation capacity of the brake resistance of the SDBR.
- The double resistance braking mode can reduce active power loss, reduce the work time of each resistor, and improve the service life of the resistors with the same LVRT performance.
- An SDBR based on a fuzzy controller can selectively input different resistor sizes according to different system voltage sag levels. It can follow the system in real-time, and can accurately and flexibly control the system.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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pe | |||
---|---|---|---|
NB | Z | PB | |
NB | Z | PB | NB |
Z | Z | PB | NB |
PB | PB | NB | NB |
Rs | Rr | Lls | Llr | Lm | p |
---|---|---|---|---|---|
0.023 | 0.016 | 0.18 | 0.16 | 2.9 | 3 |
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Dong, H.; Wu, H.; Pan, J.; Chen, Y.; Xu, B. Research on Double-Fed Induction Generator Low Voltage Ride Through Based on Double Braking Resistors Using Fuzzy Control. Energies 2018, 11, 1155. https://doi.org/10.3390/en11051155
Dong H, Wu H, Pan J, Chen Y, Xu B. Research on Double-Fed Induction Generator Low Voltage Ride Through Based on Double Braking Resistors Using Fuzzy Control. Energies. 2018; 11(5):1155. https://doi.org/10.3390/en11051155
Chicago/Turabian StyleDong, Hao, Hongbin Wu, Jing Pan, Yu Chen, and Bin Xu. 2018. "Research on Double-Fed Induction Generator Low Voltage Ride Through Based on Double Braking Resistors Using Fuzzy Control" Energies 11, no. 5: 1155. https://doi.org/10.3390/en11051155
APA StyleDong, H., Wu, H., Pan, J., Chen, Y., & Xu, B. (2018). Research on Double-Fed Induction Generator Low Voltage Ride Through Based on Double Braking Resistors Using Fuzzy Control. Energies, 11(5), 1155. https://doi.org/10.3390/en11051155