Improved Analytical Algorithm for Magnetic Field of End Windings in 300Mvar Synchronous Condenser

The magnetic field of end windings affects the leakage reactance of end windings and the eddy current losses of end structures in the large electrical machine. With the rising of single-machine capacity, such effect becomes more obvious. However, due to the complexity of end structures of large elec...

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Main Authors: Erhang Zhu, Yanping Liang, Xiao Han, Xu Bian, Chenguang Wang
Format: Article
Language:English
Published: IEEE 2021-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9448232/
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author Erhang Zhu
Yanping Liang
Xiao Han
Xu Bian
Chenguang Wang
author_facet Erhang Zhu
Yanping Liang
Xiao Han
Xu Bian
Chenguang Wang
author_sort Erhang Zhu
collection DOAJ
description The magnetic field of end windings affects the leakage reactance of end windings and the eddy current losses of end structures in the large electrical machine. With the rising of single-machine capacity, such effect becomes more obvious. However, due to the complexity of end structures of large electrical machine, it will cause difficulty in meshing and long calculation time to calculate the magnetic field of end windings by using 3-D finite element method (FEM). In order to calculate the magnetic field of end windings quickly and accurately, an improved analytical algorithm (IAA) is proposed based on the mirror image principle, which takes into account the influence of stator back core and air-gap on the magnetic field of end windings by adding the fictitious boundary current and air-gap current, respectively. Taking a 300Mvar synchronous condenser (SC) as an example, the boundary current, air-gap current and magnetic field of end windings are calculated. Then, the influence of stator back core and stator involute segment current on the magnetic field of end windings are analyzed, which provides a theoretical support for the design and optimization of SC. To validate the accuracy of IAA, the calculation result is compared with 3-D FEM.
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spelling doaj.art-eb6747b07f7e4e1ba239a54b6e6b9c712022-12-21T20:25:14ZengIEEEIEEE Access2169-35362021-01-019858858589310.1109/ACCESS.2021.30874999448232Improved Analytical Algorithm for Magnetic Field of End Windings in 300Mvar Synchronous CondenserErhang Zhu0Yanping Liang1https://orcid.org/0000-0003-2101-667XXiao Han2Xu Bian3Chenguang Wang4College of Electrical and Electronic Engineering, Harbin University of Science and Technology, Harbin, ChinaCollege of Electrical and Electronic Engineering, Harbin University of Science and Technology, Harbin, ChinaCollege of Electrical and Electronic Engineering, Harbin University of Science and Technology, Harbin, ChinaCollege of Electrical and Electronic Engineering, Harbin University of Science and Technology, Harbin, ChinaCollege of Electrical and Electronic Engineering, Harbin University of Science and Technology, Harbin, ChinaThe magnetic field of end windings affects the leakage reactance of end windings and the eddy current losses of end structures in the large electrical machine. With the rising of single-machine capacity, such effect becomes more obvious. However, due to the complexity of end structures of large electrical machine, it will cause difficulty in meshing and long calculation time to calculate the magnetic field of end windings by using 3-D finite element method (FEM). In order to calculate the magnetic field of end windings quickly and accurately, an improved analytical algorithm (IAA) is proposed based on the mirror image principle, which takes into account the influence of stator back core and air-gap on the magnetic field of end windings by adding the fictitious boundary current and air-gap current, respectively. Taking a 300Mvar synchronous condenser (SC) as an example, the boundary current, air-gap current and magnetic field of end windings are calculated. Then, the influence of stator back core and stator involute segment current on the magnetic field of end windings are analyzed, which provides a theoretical support for the design and optimization of SC. To validate the accuracy of IAA, the calculation result is compared with 3-D FEM.https://ieeexplore.ieee.org/document/9448232/Synchronous condensermagnetic fieldanalytical algorithmmirror imagestator back core
spellingShingle Erhang Zhu
Yanping Liang
Xiao Han
Xu Bian
Chenguang Wang
Improved Analytical Algorithm for Magnetic Field of End Windings in 300Mvar Synchronous Condenser
IEEE Access
Synchronous condenser
magnetic field
analytical algorithm
mirror image
stator back core
title Improved Analytical Algorithm for Magnetic Field of End Windings in 300Mvar Synchronous Condenser
title_full Improved Analytical Algorithm for Magnetic Field of End Windings in 300Mvar Synchronous Condenser
title_fullStr Improved Analytical Algorithm for Magnetic Field of End Windings in 300Mvar Synchronous Condenser
title_full_unstemmed Improved Analytical Algorithm for Magnetic Field of End Windings in 300Mvar Synchronous Condenser
title_short Improved Analytical Algorithm for Magnetic Field of End Windings in 300Mvar Synchronous Condenser
title_sort improved analytical algorithm for magnetic field of end windings in 300mvar synchronous condenser
topic Synchronous condenser
magnetic field
analytical algorithm
mirror image
stator back core
url https://ieeexplore.ieee.org/document/9448232/
work_keys_str_mv AT erhangzhu improvedanalyticalalgorithmformagneticfieldofendwindingsin300mvarsynchronouscondenser
AT yanpingliang improvedanalyticalalgorithmformagneticfieldofendwindingsin300mvarsynchronouscondenser
AT xiaohan improvedanalyticalalgorithmformagneticfieldofendwindingsin300mvarsynchronouscondenser
AT xubian improvedanalyticalalgorithmformagneticfieldofendwindingsin300mvarsynchronouscondenser
AT chenguangwang improvedanalyticalalgorithmformagneticfieldofendwindingsin300mvarsynchronouscondenser