A New Structure for PMG-Based WECSs With Battery Storage Systems

This paper develops and tests the performance of a new structure for grid-connected permanent magnet generator (PMG)-based wind energy conversion systems (WECSs) that have battery storage units (BSUs). The new structure is called the split dc-bus, and it is designed to reduce the pulsations in PMG d...

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Main Authors: S. A. Saleh, X. F. St. Onge
Format: Article
Language:English
Published: IEEE 2020-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9229512/
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spelling doaj-3f798fa60f2c4d1d9f38440785931ad82021-06-03T23:09:02ZengIEEEIEEE Access2169-35362020-01-01819035619036610.1109/ACCESS.2020.30323259229512A New Structure for PMG-Based WECSs With Battery Storage SystemsS. A. Saleh0https://orcid.org/0000-0002-5599-938XX. F. St. Onge1https://orcid.org/0000-0002-9711-6880ECE, University of New Brunswick, Frederciton, NB, CanadaECE, University of New Brunswick, Frederciton, NB, CanadaThis paper develops and tests the performance of a new structure for grid-connected permanent magnet generator (PMG)-based wind energy conversion systems (WECSs) that have battery storage units (BSUs). The new structure is called the split dc-bus, and it is designed to reduce the pulsations in PMG developed torque and fluctuations in the power delivered to the grid. The reduction in PMG torque pulsations is achieved by employing a 5-level ac-dc power electronic converter (PEC) as the generator-PEC, whose dc outputs are processed by a two-port active dc-link. This active dc-link charges the BSUs and supplies the discharging PEC. The reduction of fluctuations in the delivered power is achieved by discharging the BSUs at point-of-common-coupling (PCC). The generator-side PEC, dc-link, grid-side PEC, and discharging PEC, are operated by a supervisor droop controller. The split-dc bus PMG-based WECS is implemented for performance testing under different wind speeds and levels of power delivery. Test results demonstrate reductions in PMG torque pulsations, along with reductions in the power delivered to the grid. These features of the split-dc bus PMG-based WECS are found to be complimented with a minor sensitivity to the changes in wind speed and changes in the power delivered to the grid.https://ieeexplore.ieee.org/document/9229512/Battery storage systemswind energy conversion systemspermanent magnet generatorstorque pulsationsfrequency variations
collection DOAJ
language English
format Article
sources DOAJ
author S. A. Saleh
X. F. St. Onge
spellingShingle S. A. Saleh
X. F. St. Onge
A New Structure for PMG-Based WECSs With Battery Storage Systems
IEEE Access
Battery storage systems
wind energy conversion systems
permanent magnet generators
torque pulsations
frequency variations
author_facet S. A. Saleh
X. F. St. Onge
author_sort S. A. Saleh
title A New Structure for PMG-Based WECSs With Battery Storage Systems
title_short A New Structure for PMG-Based WECSs With Battery Storage Systems
title_full A New Structure for PMG-Based WECSs With Battery Storage Systems
title_fullStr A New Structure for PMG-Based WECSs With Battery Storage Systems
title_full_unstemmed A New Structure for PMG-Based WECSs With Battery Storage Systems
title_sort new structure for pmg-based wecss with battery storage systems
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2020-01-01
description This paper develops and tests the performance of a new structure for grid-connected permanent magnet generator (PMG)-based wind energy conversion systems (WECSs) that have battery storage units (BSUs). The new structure is called the split dc-bus, and it is designed to reduce the pulsations in PMG developed torque and fluctuations in the power delivered to the grid. The reduction in PMG torque pulsations is achieved by employing a 5-level ac-dc power electronic converter (PEC) as the generator-PEC, whose dc outputs are processed by a two-port active dc-link. This active dc-link charges the BSUs and supplies the discharging PEC. The reduction of fluctuations in the delivered power is achieved by discharging the BSUs at point-of-common-coupling (PCC). The generator-side PEC, dc-link, grid-side PEC, and discharging PEC, are operated by a supervisor droop controller. The split-dc bus PMG-based WECS is implemented for performance testing under different wind speeds and levels of power delivery. Test results demonstrate reductions in PMG torque pulsations, along with reductions in the power delivered to the grid. These features of the split-dc bus PMG-based WECS are found to be complimented with a minor sensitivity to the changes in wind speed and changes in the power delivered to the grid.
topic Battery storage systems
wind energy conversion systems
permanent magnet generators
torque pulsations
frequency variations
url https://ieeexplore.ieee.org/document/9229512/
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