Research on DFIG-ES System to Enhance the Fast-Frequency Response Capability of Wind Farms

With the increasing penetration of wind power generation, the frequency regulation burden on conventional synchronous generators has become heavier, as the rotor speed of doubly-fed induction generator (DFIG) is decoupled with the system frequency. As the frequency regulation capability of wind farm...

Full description

Bibliographic Details
Main Authors: Sijia Tu, Bingda Zhang, Xianglong Jin
Format: Article
Language:English
Published: MDPI AG 2019-09-01
Series:Energies
Subjects:
ES
Online Access:https://www.mdpi.com/1996-1073/12/18/3581
id doaj-c38f711e4ce1472f861f390f8beaeb15
record_format Article
spelling doaj-c38f711e4ce1472f861f390f8beaeb152020-11-25T02:08:00ZengMDPI AGEnergies1996-10732019-09-011218358110.3390/en12183581en12183581Research on DFIG-ES System to Enhance the Fast-Frequency Response Capability of Wind FarmsSijia Tu0Bingda Zhang1Xianglong Jin2The Key Laboratory of Smart Grid of Ministry of Education, Tianjin University, Tianjin 300072, ChinaThe Key Laboratory of Smart Grid of Ministry of Education, Tianjin University, Tianjin 300072, ChinaThe Key Laboratory of Smart Grid of Ministry of Education, Tianjin University, Tianjin 300072, ChinaWith the increasing penetration of wind power generation, the frequency regulation burden on conventional synchronous generators has become heavier, as the rotor speed of doubly-fed induction generator (DFIG) is decoupled with the system frequency. As the frequency regulation capability of wind farms is an urgent appeal, the inertia control of DFIG has been studied by many researchers and the energy storage (ES) system has been installed in wind farms to respond to frequency deviation with doubly-fed induction generators (DFIGs). In view of the high allocation and maintenance cost of the ES system, the capacity allocation scheme of the ES system&#8212;especially for fast-frequency response&#8212;is proposed in this paper. The capacity allocation principle was to make the wind farm possess the same potential inertial energy as that of synchronous generators set with equal rated power. After the capacity of the ES system was defined, the coordinated control strategy of the DFIG-ES system with consideration of wind speed was proposed in order to improve the frequency nadir during fast-frequency response. The overall power reference of the DFIG-ES system was calculated on the basis of the frequency response characteristic of synchronous generators. In particular, once the power reference of DFIG was determined, a novel virtual inertia control method of DFIG was put forward to release rotational kinetic energy and produce power surge by means of continuously modifying the proportional coefficient of maximum power point tracking (MPPT) control. During the deceleration period, the power reference smoothly decreased with the rotor speed until it reached the MPPT curve, wherein the rotor speed could rapidly recover by virtue of wind power so that the secondary frequency drop could be avoided. Afterwards, a fuzzy logic controller (FLC) was designed to distribute output power between the DFIG and ES system according to the rotor speed of DFIG and <inline-formula> <math display="inline"> <semantics> <mrow> <mi>S</mi> <mi>o</mi> <mi>C</mi> </mrow> </semantics> </math> </inline-formula> of ES; thus the scheme enabled the DFIG-ES system to respond to frequency deviation in most cases while preventing the secondary frequency drop and prolonging the service life of the DFIG-ES system. Finally, the test results, which were based on the simulation system on MATLAB/Simulink software, verified the effectiveness of the proposed control strategy by comparison with other control methods and verified the rationality of the designed fuzzy logic controller and proposed capacity allocation scheme of the ES system.https://www.mdpi.com/1996-1073/12/18/3581DFIGESvirtual inertia controlcapacity allocationfuzzy logic controller
collection DOAJ
language English
format Article
sources DOAJ
author Sijia Tu
Bingda Zhang
Xianglong Jin
spellingShingle Sijia Tu
Bingda Zhang
Xianglong Jin
Research on DFIG-ES System to Enhance the Fast-Frequency Response Capability of Wind Farms
Energies
DFIG
ES
virtual inertia control
capacity allocation
fuzzy logic controller
author_facet Sijia Tu
Bingda Zhang
Xianglong Jin
author_sort Sijia Tu
title Research on DFIG-ES System to Enhance the Fast-Frequency Response Capability of Wind Farms
title_short Research on DFIG-ES System to Enhance the Fast-Frequency Response Capability of Wind Farms
title_full Research on DFIG-ES System to Enhance the Fast-Frequency Response Capability of Wind Farms
title_fullStr Research on DFIG-ES System to Enhance the Fast-Frequency Response Capability of Wind Farms
title_full_unstemmed Research on DFIG-ES System to Enhance the Fast-Frequency Response Capability of Wind Farms
title_sort research on dfig-es system to enhance the fast-frequency response capability of wind farms
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2019-09-01
description With the increasing penetration of wind power generation, the frequency regulation burden on conventional synchronous generators has become heavier, as the rotor speed of doubly-fed induction generator (DFIG) is decoupled with the system frequency. As the frequency regulation capability of wind farms is an urgent appeal, the inertia control of DFIG has been studied by many researchers and the energy storage (ES) system has been installed in wind farms to respond to frequency deviation with doubly-fed induction generators (DFIGs). In view of the high allocation and maintenance cost of the ES system, the capacity allocation scheme of the ES system&#8212;especially for fast-frequency response&#8212;is proposed in this paper. The capacity allocation principle was to make the wind farm possess the same potential inertial energy as that of synchronous generators set with equal rated power. After the capacity of the ES system was defined, the coordinated control strategy of the DFIG-ES system with consideration of wind speed was proposed in order to improve the frequency nadir during fast-frequency response. The overall power reference of the DFIG-ES system was calculated on the basis of the frequency response characteristic of synchronous generators. In particular, once the power reference of DFIG was determined, a novel virtual inertia control method of DFIG was put forward to release rotational kinetic energy and produce power surge by means of continuously modifying the proportional coefficient of maximum power point tracking (MPPT) control. During the deceleration period, the power reference smoothly decreased with the rotor speed until it reached the MPPT curve, wherein the rotor speed could rapidly recover by virtue of wind power so that the secondary frequency drop could be avoided. Afterwards, a fuzzy logic controller (FLC) was designed to distribute output power between the DFIG and ES system according to the rotor speed of DFIG and <inline-formula> <math display="inline"> <semantics> <mrow> <mi>S</mi> <mi>o</mi> <mi>C</mi> </mrow> </semantics> </math> </inline-formula> of ES; thus the scheme enabled the DFIG-ES system to respond to frequency deviation in most cases while preventing the secondary frequency drop and prolonging the service life of the DFIG-ES system. Finally, the test results, which were based on the simulation system on MATLAB/Simulink software, verified the effectiveness of the proposed control strategy by comparison with other control methods and verified the rationality of the designed fuzzy logic controller and proposed capacity allocation scheme of the ES system.
topic DFIG
ES
virtual inertia control
capacity allocation
fuzzy logic controller
url https://www.mdpi.com/1996-1073/12/18/3581
work_keys_str_mv AT sijiatu researchondfigessystemtoenhancethefastfrequencyresponsecapabilityofwindfarms
AT bingdazhang researchondfigessystemtoenhancethefastfrequencyresponsecapabilityofwindfarms
AT xianglongjin researchondfigessystemtoenhancethefastfrequencyresponsecapabilityofwindfarms
_version_ 1724928176525672448