Stability Enhancement and Direct Speed Control of DFIG Inertia Emulation Control Strategy
With the increasing penetration of renewable energy generators in power grid, traditional vector control (VC) strategy for double fed induction generator (DFIG) is unable to provide extra active power support to grid because DFIG inertia is made decoupled from grid frequency fluctuations. To solve t...
Main Authors: | , , , , , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
IEEE
2019-01-01
|
Series: | IEEE Access |
Subjects: | |
Online Access: | https://ieeexplore.ieee.org/document/8811482/ |
id |
doaj-cb2d6f1b688643d5aa83e96a71a6b212 |
---|---|
record_format |
Article |
spelling |
doaj-cb2d6f1b688643d5aa83e96a71a6b2122021-03-29T23:23:46ZengIEEEIEEE Access2169-35362019-01-01712008912010510.1109/ACCESS.2019.29371808811482Stability Enhancement and Direct Speed Control of DFIG Inertia Emulation Control StrategyHaoshu Shao0https://orcid.org/0000-0002-0459-9095Xu Cai1https://orcid.org/0000-0001-9052-9423Zheng Li2Dangsheng Zhou3Sujuan Sun4Liang Guo5Yunfeng Cao6Fangquan Rao7Wind Power Research Center, School of Electronic Information and Electrical Engineering, Shanghai Jiao Tong University, Shanghai, ChinaWind Power Research Center, School of Electronic Information and Electrical Engineering, Shanghai Jiao Tong University, Shanghai, ChinaCollege of Information Science and Technology, Donghua University, Shanghai, ChinaShenzhen Hopewind Electric Co., Ltd, Shenzhen, ChinaState Grid Electric Power Research Institute (NARI Group Corporation), Nanjing, ChinaState Grid Electric Power Research Institute (NARI Group Corporation), Nanjing, ChinaWind Power Research Center, School of Electronic Information and Electrical Engineering, Shanghai Jiao Tong University, Shanghai, ChinaWind Power Research Center, School of Electronic Information and Electrical Engineering, Shanghai Jiao Tong University, Shanghai, ChinaWith the increasing penetration of renewable energy generators in power grid, traditional vector control (VC) strategy for double fed induction generator (DFIG) is unable to provide extra active power support to grid because DFIG inertia is made decoupled from grid frequency fluctuations. To solve this problem, Virtual Synchronous Generator (VSG) control strategy as well as Inertial Synchronization Control (ISynC) strategy are proposed for DFIG rotor side converter (RSC) and grid side converter (GSC) respectively, so that DFIG rotor speed will experience an acceleration or a deceleration process to release or absorb the kinetic energy stored in DFIG wind turbines, which can prevent grid frequency from deep drop or increase. However, VSG-ISynC control strategy has its limitations in that rotor speed may lose its stability when large load is added into power system, at the same time, the secondary frequency drop is serious if rotor speed has decreased lower than the admissible minimum value. To address this issue, a modified VSG (M-VSG) control strategy is proposed by dynamically changing the P-f droop coefficient of conventional VSG control strategy, aiming to expand the stability boundary of DFIG operation. Additionally, an extra rotor speed closed loop is added into VSG control strategy, which can significantly reduce serious frequency secondary drop by controlling rotor speed directly. Simulation and hardware-in-loop (HIL) verification are both carried out in RTDS & GH Bladed co-simulation research platform to verify the effectiveness of proposed M-VSG control strategy.https://ieeexplore.ieee.org/document/8811482/Double fed induction generator (DFIG)inertial synchronization control strategymodified control strategystability boundarysecondary frequency dropvirtual synchronous generator control strategy |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Haoshu Shao Xu Cai Zheng Li Dangsheng Zhou Sujuan Sun Liang Guo Yunfeng Cao Fangquan Rao |
spellingShingle |
Haoshu Shao Xu Cai Zheng Li Dangsheng Zhou Sujuan Sun Liang Guo Yunfeng Cao Fangquan Rao Stability Enhancement and Direct Speed Control of DFIG Inertia Emulation Control Strategy IEEE Access Double fed induction generator (DFIG) inertial synchronization control strategy modified control strategy stability boundary secondary frequency drop virtual synchronous generator control strategy |
author_facet |
Haoshu Shao Xu Cai Zheng Li Dangsheng Zhou Sujuan Sun Liang Guo Yunfeng Cao Fangquan Rao |
author_sort |
Haoshu Shao |
title |
Stability Enhancement and Direct Speed Control of DFIG Inertia Emulation Control Strategy |
title_short |
Stability Enhancement and Direct Speed Control of DFIG Inertia Emulation Control Strategy |
title_full |
Stability Enhancement and Direct Speed Control of DFIG Inertia Emulation Control Strategy |
title_fullStr |
Stability Enhancement and Direct Speed Control of DFIG Inertia Emulation Control Strategy |
title_full_unstemmed |
Stability Enhancement and Direct Speed Control of DFIG Inertia Emulation Control Strategy |
title_sort |
stability enhancement and direct speed control of dfig inertia emulation control strategy |
publisher |
IEEE |
series |
IEEE Access |
issn |
2169-3536 |
publishDate |
2019-01-01 |
description |
With the increasing penetration of renewable energy generators in power grid, traditional vector control (VC) strategy for double fed induction generator (DFIG) is unable to provide extra active power support to grid because DFIG inertia is made decoupled from grid frequency fluctuations. To solve this problem, Virtual Synchronous Generator (VSG) control strategy as well as Inertial Synchronization Control (ISynC) strategy are proposed for DFIG rotor side converter (RSC) and grid side converter (GSC) respectively, so that DFIG rotor speed will experience an acceleration or a deceleration process to release or absorb the kinetic energy stored in DFIG wind turbines, which can prevent grid frequency from deep drop or increase. However, VSG-ISynC control strategy has its limitations in that rotor speed may lose its stability when large load is added into power system, at the same time, the secondary frequency drop is serious if rotor speed has decreased lower than the admissible minimum value. To address this issue, a modified VSG (M-VSG) control strategy is proposed by dynamically changing the P-f droop coefficient of conventional VSG control strategy, aiming to expand the stability boundary of DFIG operation. Additionally, an extra rotor speed closed loop is added into VSG control strategy, which can significantly reduce serious frequency secondary drop by controlling rotor speed directly. Simulation and hardware-in-loop (HIL) verification are both carried out in RTDS & GH Bladed co-simulation research platform to verify the effectiveness of proposed M-VSG control strategy. |
topic |
Double fed induction generator (DFIG) inertial synchronization control strategy modified control strategy stability boundary secondary frequency drop virtual synchronous generator control strategy |
url |
https://ieeexplore.ieee.org/document/8811482/ |
work_keys_str_mv |
AT haoshushao stabilityenhancementanddirectspeedcontrolofdfiginertiaemulationcontrolstrategy AT xucai stabilityenhancementanddirectspeedcontrolofdfiginertiaemulationcontrolstrategy AT zhengli stabilityenhancementanddirectspeedcontrolofdfiginertiaemulationcontrolstrategy AT dangshengzhou stabilityenhancementanddirectspeedcontrolofdfiginertiaemulationcontrolstrategy AT sujuansun stabilityenhancementanddirectspeedcontrolofdfiginertiaemulationcontrolstrategy AT liangguo stabilityenhancementanddirectspeedcontrolofdfiginertiaemulationcontrolstrategy AT yunfengcao stabilityenhancementanddirectspeedcontrolofdfiginertiaemulationcontrolstrategy AT fangquanrao stabilityenhancementanddirectspeedcontrolofdfiginertiaemulationcontrolstrategy |
_version_ |
1724189584789602304 |