A New Adaptive Approach to Control Circulating and Output Current of Modular Multilevel Converter
Abstract
:1. Introduction
2. Operation and System Mathematical Modeling
2.1. Switching Operation of the MMC
2.2. System Mathematical Modeling
3. Control Scheme of the MMC
3.1. Adaptive PI Controller Design
3.1.1. Fuzzy Controller Architecture
- The “rule-base” which contains the information of controlling output variables are created in FLC, in the shape of IF-THEN rules, with condition and conclusion.
- The rules are evaluated in the inference mechanism according to the error. During inference mechanism, it is concluded which control rules are appropriate at the current situation. Moreover, the choice of I/P to the plant are also enabled in this phase.
- During the fuzzification, a “crisp” (which are real numbers, not fuzzy sets) or actual time information are collected and reshaped to a fuzzy set using fuzzy expressive terms, expressive variables, and membership functions. Moreover, I/P is modified and interpreted which are then compared with the rules defined in the rule-base.
3.1.2. Fuzzy PI Controller
- If error is zero, then proportional gain is large and integral gain is small
- If error is small, then proportional gain is large and integral gain is zero.
- If error is large, then proportional gain is large and integral gain is large.
3.2. Circulating Current Control
3.3. Output Current Control
4. Results and Discussions
5. Conclusions and Future Work
Author Contributions
Funding
Conflicts of Interest
Appendix A
Parameters | Values | Symbols | Units |
---|---|---|---|
D.C voltage | 200 | kV | |
Grid voltage | 100 | kV | |
Output current | 1 | kA | |
Frequency | 50 | f | Hz |
No of SM | 12 | N | - |
Inductance | 50 | mH | |
Resistance | 1.57 | Ω | |
Capacitance | 0.45 | C | mF |
Performance Indices Elevation For | API Controller | PR Controller | ||||
---|---|---|---|---|---|---|
1ISE | 2IAE | 3IATE | ISE | IAE | ITAE | |
Circulating current | 3.714 | 0.2237 | 0.1834 | 1696 | 23.47 | 14.63 |
3.665 | 0.2105 | 0.1836 | 2247 | 25.46 | 14.47 | |
3.694 | 0.2200 | 0.1832 | 2483 | 25.31 | 25.31 | |
Output current | 400.56 | 5.968 | 2.915 | 1022 | 13.5 | 8.913 |
20.86 | 5.658 | 2.997 | 50.5 | 13.1 | 9.009 |
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Scenario | Capacitors States in the Upper Arm | Capacitors States in the Lower Arm | Output Voltage |
---|---|---|---|
1 | All capacitors are inserted | All capacitor bypassed | |
2 | One capacitor bypassed and three capacitors inserted | One capacitor inserted and three capacitors bypassed | |
3 | Two capacitors bypassed and two capacitors inserted | Two capacitors inserted and two capacitors bypassed | 0 |
4 | Three capacitors bypassed and one capacitor inserted | Three capacitors inserted and one capacitor bypassed | |
5 | Four capacitors bypassed and zero capacitors inserted | Four capacitors inserted and zero capacitors bypassed |
Input Membership Functions | IF-THEN Rules | Output Membership Functions | ||||
---|---|---|---|---|---|---|
S.No | Linguistic Terms | Range | If Input | Then Output ( | Linguistic Terms | Range |
(1) | Zero | [0, 0.2] | Zero | Zero. Large | Zero | [0, 0.2] |
(2) | Small | [0.3, 0.7] | Small | Large. Small | Small | [0.3, 0.7] |
(3) | Large | [0.8, 1.0] | Large | Large. Large | Large | [0.8, 1.0] |
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Ishfaq, M.; Uddin, W.; Zeb, K.; Khan, I.; Ul Islam, S.; Adil Khan, M.; Kim, H.J. A New Adaptive Approach to Control Circulating and Output Current of Modular Multilevel Converter. Energies 2019, 12, 1118. https://doi.org/10.3390/en12061118
Ishfaq M, Uddin W, Zeb K, Khan I, Ul Islam S, Adil Khan M, Kim HJ. A New Adaptive Approach to Control Circulating and Output Current of Modular Multilevel Converter. Energies. 2019; 12(6):1118. https://doi.org/10.3390/en12061118
Chicago/Turabian StyleIshfaq, Muhammad, Waqar Uddin, Kamran Zeb, Imran Khan, Saif Ul Islam, Muhammad Adil Khan, and Hee Je Kim. 2019. "A New Adaptive Approach to Control Circulating and Output Current of Modular Multilevel Converter" Energies 12, no. 6: 1118. https://doi.org/10.3390/en12061118