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Tytuł artykułu

Anti-windup strategy for an LQ current controller with oscillatory terms for three-phase grid-tie VSCs in SMES systems

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The paper presents a linear-quadratic current controller with damped oscillatory terms designed for three-phase grid-tie voltage source converters used in SMES systems and operated under distorted grid voltage conditions. Special emphasis is placed on a synthesis of an anti-windup mechanism to prevent wind-up derived from the oscillatory terms by the use of a new active damping loop based on a simple moving average method. As a consequence, the current feedback gain may be increased without unwanted overshoot and overruns, and performance of the system can be improved.
Wydawca
Rocznik
Strony
65--81
Opis fizyczny
Bibliogr. 33 poz., rys., tab.
Twórcy
autor
  • Warsaw University of Technology, Institute of Control and Industrial Electronics, Electrical Drive Division, ul. Koszykowa 75, 00-662 Warszawa, Poland
autor
  • Warsaw University of Technology, Institute of Control and Industrial Electronics, Electrical Drive Division, ul. Koszykowa 75, 00-662 Warszawa, Poland
autor
  • Warsaw University of Technology, Institute of Control and Industrial Electronics, Electrical Drive Division, ul. Koszykowa 75, 00-662 Warszawa, Poland
autor
  • Warsaw University of Technology, Institute of Control and Industrial Electronics, Electrical Drive Division, ul. Koszykowa 75, 00-662 Warszawa, Poland
  • Warsaw University of Technology, Institute of Control and Industrial Electronics, Electrical Drive Division, ul. Koszykowa 75, 00-662 Warszawa, Poland
Bibliografia
  • [1] JÍLEK R., GURECKÝ J., RUSNOK S., SOBOTA P., Electricity storage systems using compressed air, 16th International Scientific Conference on Electric Power Engineering EPE’2015, Switzerland, 2015, 453–458.
  • [2] SAEZ-DE-IBARRA A., MARTINEZ-LASERNA E., STROE D., ŚWIERCZYŃSKI M., RODRIGUEZ P., Sizing Study of Second Life Li-ion Batteries for Enhancing Renewable Energy Grid Integration, IEEE Transactions on Industry Applications, 2016, 52, 6, 4999–5008.
  • [3] AWADALLAH M.A., VENKATESH B., Energy Storage in Flywheels: An Overview, Canadian Journal of Electrical and Computer Engineering, 2015, 38, 2, 183–193.
  • [4] ALI M.H., WU B., DOUGAL R.A., An Overview of SMES Applications in Power and Energy Systems, IEEE Transactions on Sustainable Energy, 2010, 1, 1, 38–47.
  • [5] ORŁOWSKA-KOWALSKA T., BLAABJERG F., RODRÍGUEZ J., Advanced and Intelligent Control in Power Electronics and Drives, Springer, 2014.
  • [6] SHAYESTEHFARD A., MEKHILEF S., MOKHLIS H., IZDPWM-Based Feedforward Controller for Grid-Connected Inverters under unbalanced and distorted conditions, IEEE Trans. on Industrial Electronics, 2016, 99, 1–1.
  • [7] HAMOUDA M., BLANCHETTE H.F., AL-HADDAD K., Unity Power Factor Operation of Indirect Matrix Converter Tied to Unbalanced Grid, IEEE Transactions on Power Electronics, 2016, 31, 2, 1095–1107.
  • [8] BUCCELLA C., KHALID H.A., CECATI C., XU D., On flatness-based controller for shuntconnected VSC with LCL-filter for voltage dip mitigation in a weak grid, 41st Annual Conference of the IEEE IECON’2015, Japan, 2015.
  • [9] JUDEWICZ M.G., GONZÁLEZ S.A., ECHEVERRÍA N.I., FISCHER J.R., CARRICA D.O., Generalized Predictive Current Control for Grid-Tie Three-Phase Inv., IEEE Trans. on Industr. Electronics, 2016, 63, 7, 4475–4484.
  • [10] KAZMIERKOWSKI M., JASIŃSKI M., WRONA G., DSP-Based Control of Grid-Connected Power Converters Operating Under Grid Distortions, IEEE Transaction on Industrial Informatics, 2011, 7, 2, 204–211.
  • [11] DANNEHL J., FUCHS F., THOGERSEN P., PI State Space Current Control of Grid-Connected PWM Converters With LCL Filters, IEEE Trans. on Power Electr., 2010, 25, 9, 2320–2330.
  • [12] YANG Y., ZHOU K., BLAABJERG F., Enhancing the Frequency Adaptability of Periodic Current Controllers With a Fixed Sampling Rate for Grid-Conn. Power Conv., IEEE Trans. on Power Electr., 2016, 31, 10, 7273–7285.
  • [13] PENG Y., VARANCIC D., HANUS R., WELLER S., Anti-Windup Designs for Multivariable Controllers, Automatica, 1998, 34, 12, 1559–1565.
  • [14] RICHTER S.A., DONCKER R.W.D., Digital PR control with anti-windup applied to a voltage source inverter, Power, Proc. of the 2011, 14th European Conf. on Electronics and Applications (EPE 2011), 2011, 1–10.
  • [15] BOTTRELL N., GREEN T.C., Comparison of Current-Limiting Strategies During Fault RideThrough of Inverters to Prevent Latch-Up and Wind-Up, IEEE Transactions on Power Electronics, 2014, 29, 7, 3786–3797.
  • [16] SZYPULSKI M., IWAŃSKI G., Sensorless State Control of Stand-Alone Doubly Fed Induction Generator Supplying Nonlinear and Unbalanced Loads, IEEE Transactions on Energy Conversion, 2016, PP, 99, 1–1.
  • [17] HARNEFORS L., YEPES A.G., VIDAL A., DOVAL-GANDOY J., Multifrequency Current Control With Distortion-Free Saturation, IEEE Journal of Emerging and Selected Topics in Power Electronics, 2016, 4, 1, 37–43.
  • [18] BUSADA C.A., JORGE S.G., LEON A.E., SOLSONA J.A., Current Controller Based on Reduced Order Generalized Integrators for DGS, IEEE Transactions on Industrial Electronics, 2012, 59, 7, 2898–2909.
  • [19] SMITH S.W., Digital Signal Processing: A Practical Guide for Engineers and Scientists, California Technical Publishing, 2002.
  • [20] DOS SANTOS E.C., CABRAL DA SILVA E.R., In: Neutral-Point-Clamped Configuration, in Advanced Power Electronics Converters: PWM Converters Processing AC Voltages, John Wiley and Sons, 2014.
  • [21] BERES R., WANG X., BLAABJERG F., BAK C.L., LISERRE M., A review of passive filters for gridconnected voltage source converters, IEEE Applied Power Electronics Conf. and Exposition (APEC’2014), China 2014, 2208–2215.
  • [22] LINN Z., KAKIGANO H., MIURA Y., ISE T., Comparison of power converter circuits for HVDC with SMES, 14th European Conference on Power Electronics and Applications (EPE’2011), United Kingdom, 2011, 1–10.
  • [23] INDU P.S., JAYAN M. V., Frequency regulation of an isolated hybrid power system with Superconducting Magnetic Energy Storage, 2015 International Conf. on Power, Instrum., Control and Computing (PICC’2015), India, 2015, 1–6.
  • [24] Control system of the grid-connected converter based on a state current regulator with oscillatory terms, Przegląd Elektrotechniczny (Electrical Review), 2015, 91, 1, 65–69.
  • [25] HODEL A.S., HALL C.E., Variable-structure PID control to prevent integrator windup, IEEE Trans. on Ind. Electronics, 2001, 48, 2, 442–451.
  • [26] NASLIN P., Essentials of optimal control, 1968.
  • [27] GAŁECKI A., KASZEWSKI A., UFNALSKI B., GRZESIAK L.M., State current controller with oscillatory terms for three-level grid-connected PWM rectifiers under distorted grid voltage conditions, 17th European Conf. on Power Electronics and Appl. (EPE 2015), Switzerland, 2015.
  • [28] WANG Y.F., LI Y.W., Grid Synchronization PLL Based on Cascaded Delayed Signal Cancellation, IEEE Transactions on Power Electronics, 2011, 26, 7, 1987–1997.
  • [29] FRANKLIN G.F., POWELL J.D., EMAMI-NAEINI A., In: Feedback Control of Dynamic Systems (7th Edition),Chapter 7.5.2, Pearson, 2014.
  • [30] SALIM R., KANAAN H., AL-HADDAD K., KHEDJAR B., LQR with integral action controller applied to a three-phase three-switch three-level AC/DC converter, 36th Annual Conference on Industrial Electronics Society IECON’2010, USA, 2010, 550–555.
  • [31] KEDJAR B., KANAAN H.Y., AL-HADDAD K., Vienna Rectifier With Power Quality Added Function, IEEE Transactions on Industrial Electronics, 2014, 61, 8, 3847–3856.
  • [32] GAŁECKI A., KASZEWSKI A., UFNALSKI B., GRZESIAK L.M., LQ current control for three-phase PWM rectifiers under unbalanced grid voltage conditions, 9th International Conference on Compatibility and Power Electronics (CPE’2015), Portugal, 2015, 191–196.
  • [33] UFNALSKI B., KASZEWSKI A., GRZESIAK L.M., Particle Swarm Optimization of the Multioscillatory LQR for a Three-Phase Four-Wire Voltage-Source Inverter With an LC Output Filter, IEEE Transactions on Industrial Electronics, 2015.
Uwagi
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę (zadania 2017).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-9a643491-7e8a-48de-bdcb-293929d3d2cb
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