• Title/Summary/Keyword: wind turbine simulator

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Development of Hardware Simulator for DFIG Wind Power System Composed of Anemometer and Motor-Generator Set (풍속계와 Motor-Generator 세트를 이용한 DFIG 풍력발전시스템 하드웨어 시뮬레이터 개발)

  • Oh, Seung-Jin;Cha, Min-Young;Kim, Jong-Won;Jeong, Jong-Kyou;Han, Byung-Moon;Chang, Byung-Hoon
    • The Transactions of the Korean Institute of Power Electronics
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    • v.16 no.1
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    • pp.11-19
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    • 2011
  • This paper describe development of a hardware simulator for the DFIG wind power system, which was designed considering wind characteristic, blade characteristic, and blade inertia compensation. The simulator consists of three major parts, such as wind turbine model using induction motor, doubly-fed induction generator, converter-inverter set. and control system. The turbine simulator generates torque and speed signals for a specific wind turbine with respect to the given wind speed which is detected by Anemometer. This torque and speed signals are scaled down to fit the input of 3.5kW DFIG. The MSC operates to track the maximum power point, and the GSC controls the active and reactive power supplied to the grid. The operational feasibility was verified through computer simulations with PSCAD/EMTDC. And the implementation feasibility was confirmed through experimental works with a hardware set-up.

Development of Real-time based Hardware-In-Loop Simulator for performance evaluation of wind turbine control system (풍력발전기 제어시스템 성능평가를 위한 실시간 처리 기반의 Hardware-In-Loop 시뮬레이터 개발)

  • Kim, Dae-Jin;Ryu, Kyung-Sang;Kim, Byungki;Jang, Moon-Seok;Ko, Hee-Sang;Yoo, Cheol
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.18 no.10
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    • pp.794-805
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    • 2017
  • This paper proposes a Hardware-In-Loop(HIL) Simulator for a Wind Turbine and an operational control algorithm to evaluate the performance of a wind turbine control system. It provides not only for the validation of the control logics, safety functions and H/W failure, but also for the high reliability of the wind turbines (by reducing/and the reduction of the operating expense(OPEX) through performance evaluation tests with complex scenarios. On the other hand, the proposed simulator uses MATLAB, CODER, and the PLC library to operate in synchronization with the hardware, and a real-time processing-based wind turbine module including a dynamic model and control system, wind module, grid module and host PC to manage the HIL-simulator. Several experiments were carried out under the above concept to verify the effectiveness of the proposed WT HIL-simulator.

Control Algorithm for Wind Turbine Simulator with Variable Inertia Emulation (가변관성 모의 기능을 가진 풍력터빈 시뮬레이터의 제어 알고리즘)

  • 정병창;정세종;송승호
    • The Transactions of the Korean Institute of Power Electronics
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    • v.8 no.3
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    • pp.266-273
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    • 2003
  • A wind turbine simulator is developed for the emulation of variable input torque from the wind energy without actual rotor blades using motor-generator set. The torque command of dc motor is calculated from the characteristic equation of rotor blade during the change of wind speed. Especially the proposed control algorithm takes into account the fact that the moment of inertia of blade is much larger than that of driving motor. If you select the desired value of inertia, the stored/restored energy of the inertia during acceleration/deceleration can be compensated effectively resulting the only net torque is delivered to the generator. The simulator set-up has been designed and implemented using a do motor and drive. Feasibility of the proposed algorithm is verified by computer simulations and experiments.

Wind Turbine Simulator Implementation Considering Tower Effect of Rotor Blade (풍력발전기 회전자 블레이드의 타워효과를 고려한 풍차 시뮬레이터의 구현)

  • Oh, Jeong-Hun;Jeong, Byoung-Chang;Song, Seung-Ho
    • Proceedings of the KIEE Conference
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    • 2003.10b
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    • pp.247-250
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    • 2003
  • To get more realistic wind turbine torque characteristic, it is important to consider many parameters about wind turbine system. One of them is the tower effect which is occurred when a blade is bypassing the wind turbine tower and influences shaft torque fluctuation. In this paper, to emulate the similar torque performance of wind turbine, the wind turbine simulation and experiment with torque fluctuation by blade tower effect are implemented and verified. The simulation model is based on MATLAB Simulink.

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Development of the wind generation output stabilization with Lithium-ion battery (리티움-이온 배터리를 이용한 풍력발전의 출력안정화 시스템 개발)

  • Oh, Seung-Jin;Han, Byung-Moon
    • Proceedings of the KIPE Conference
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    • 2010.07a
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    • pp.178-179
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    • 2010
  • This paper presents a simulation model and analysis of grid-tied wind turbine generator with batteries using the PSCAD/EMTDC software. The modeled system is consist of two inverters and one bidirectional DC/DC converter. These inverter are to capture the maximum active power under varying wind conditions and to keep the DC-Link voltage magnitude at a specific level. And the bidirectional DC/DC converter makes battery charging or discharging depend on power gap between wind turbine output and local load. Aerodynamic models are applied for a wind turbine blade simulator.

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A Wind Turbine Simulator for Doubly-Fed Induction-type Generator with Automatic Operation Mode Change during Wind Speed Variation (가변 풍속시 운전모드 절환을 고려한 이중여자 유도형 풍력발전기의 시뮬레이터)

  • Song, Seung-Ho;Sim, Dong-Joon;Jeong, Byoung-Chang
    • The Transactions of the Korean Institute of Power Electronics
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    • v.11 no.4
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    • pp.349-360
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    • 2006
  • Controller for doubly-fed induction-type wind generation system should be designed with mechanical power on blade. The controller in this paper consists of upper level controller and lower level controller. The upper level controller determines operating modes according to mechanical input power and calculates proper reference values. There are 4 operating modes - minimum speed control, variable torque control, torque limit control and idle mode. The lower level controller performs current regulated PWM control of rotor-side converter and grid-side inverter. A wind turbine simulator is implemented using doubly-fed induction-type generator and DSP based back-to-back converter to verify the performance of designed controller experimentally.

Design of Speed Controller for Stall Blade Wind Turbine Complying with the Speed Limit During Speed Overshoot (속도 오버슈트 발생 시 제한 속도를 초과하지 않는 실속형 블레이드 풍력터빈의 속도제어기 설계)

  • Kim, Ye-Chan;Song, Seung-Ho
    • The Transactions of the Korean Institute of Power Electronics
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    • v.27 no.5
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    • pp.438-445
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    • 2022
  • Blade efficiency decreases when the rotor speed is kept constant even though the wind speed is higher than the rated value. Therefore, a speed controller is used to regulate the rotor speed in the high-wind-speed region. In stall-blade wind turbine, the role of the speed controller is important because precise aerodynamic regulation is unavailable. In this study, an effective parameter design method of a PI speed controller is proposed to limit the speed overshoot of a type 4 wind turbine with stall blades even though wind gust occurs. The proposed method considers the efficiency characteristics of the stall blade and the mechanical inertia of the wind turbine rotor. It determines the bandwidth of the speed controller to comply with the speed limit during generator speed overshoot for the worst case of wind gust. The proposed method is verified through intensive simulations with a MATLAB/SIMULINK model and experimental results obtained using a 3 kW MG set of wind turbine simulator.

Development of Wind Turbine Simulator Using 3kW PMSG (3kW 영구 자석형 동기발전기를 이용한 풍력 터빈 시뮬레이터 개발)

  • Choi, Wonshik;Oh, Joongki;Park, Kihyun;Park, Hyunchul
    • 한국신재생에너지학회:학술대회논문집
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    • 2010.11a
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    • pp.182.1-182.1
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    • 2010
  • 본 논문에서는 3kW 영구 자석형 동기발전기(PMSG)를 이용한 풍력 터빈 시뮬레이터 개발에 대해 기술하였다. 풍력발전 시스템은 블레이드를 포함한 회전부, 동력 전달부, 발전기, 전력변환기로 크게 나눌 수 있으며, 시뮬레이터는 유도 모터와 PMSG, 인버터-컨버터와 제어 시스템으로 이루어진다. 시뮬레이터를 운전하기 위해서는 특정 속도의 바람 모델을 적용하여 풍력 발전기의 회전부에 걸리게 되는 토크와 회전 속도 값이 요구된다. 풍력 터빈 모델로부터 계산값을 시뮬레이터에 맞게 스케일링하여 유도 모터를 구동 한다. 발전기측 컨버터는 MPPT(Maximum Power Point Tracking) 알고리즘을 통해 제어하고 계통측 인버터는 유효 전력과 무효 전력을 제어하도록 한다. PSIM과 MATLAB/SIMULINK를 이용하여 컴퓨터 시뮬레이션으로 그 결과를 증명하였다.

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Flicker Suppression Scheme for Variable-Speed Wind Turbine Systems

  • Van, Tan Luong;Nguyen, Thanh Hai;Lee, Dong-Choon
    • Journal of Power Electronics
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    • v.12 no.2
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    • pp.333-343
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    • 2012
  • This paper proposes a strategy of flicker mitigation for doubly-fed induction generator (DFIG) wind turbine systems. In the weak grid system where the grid impedance ratio is low, the reactive power compensation only cannot suppress the flicker sufficiently due to the limited power capacity of the converters or the DFIG. For the full suppression of flickers, the active power smoothening using the energy storage system (ESS) needs to be utilized together with the reactive power compensation. The effectiveness of the proposed method is verified by PSCAD/EMTDC simulation results for a 2[MW] DFIG wind turbine system and by experimental results for a 3[kW] wind turbine simulator.

Improved LVRT Capability and Power Smoothening of DFIG Wind Turbine Systems

  • Nguyen, Thanh Hai;Lee, Dong-Choon
    • Journal of Power Electronics
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    • v.11 no.4
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    • pp.568-575
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    • 2011
  • This paper proposes an application of energy storage devices (ESD) for low-voltage ride-through (LVRT) capability enhancement and power smoothening of doubly-fed induction generator (DFIG) wind turbine systems. A grid-side converter (GSC) is used to maintain the DC-link voltage. Meanwhile, a machine-side converter (MSC) is used to control the active and reactive powers independently. For grid disturbances, the generator output power can be reduced by increasing the generator speed, resulting in an increased inertial energy of the rotational body. Design and control techniques for the energy storage devices are introduced, which consist of current and power control loops. Also, the output power fluctuation of the generator due to wind speed variations can be smoothened by controlling the ESD. The validity of the proposed method has been verified by PSCAD/EMTDC simulation results for a 2 MW DFIG wind turbine system and by experimental results for a small-scale wind turbine simulator.