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Design and Analysis of Cooling Structure on Advanced Air-Core Stator for Megawatt-Class HTS Synchronous Motor

Authors
Kim, Ji HyungHyeon, Chang JuChae, Sang HeonKim, Do JinBoo, Chang-JinJo, Young-SikYoon, Yong SooKim, Seong-GyeomLee, HaigunKim, Ho Min
Issue Date
6월-2017
Publisher
IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
Keywords
Advanced air-core stator; eddy-current loss; finite element method; high thermal conductivity; laminated armature supporter
Citation
IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, v.27, no.4
Indexed
SCIE
SCOPUS
Journal Title
IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY
Volume
27
Number
4
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/83227
DOI
10.1109/TASC.2017.2669194
ISSN
1051-8223
Abstract
A general high-temperature superconducting synchronous motor (HTSSM) is designed and manufactured with an air-core structure, which eliminates the laminated iron core to concentrate the linkage flux in conventional rotor and stator. In an air-core structure, a nonmagnetic material such as glass fiberreinforced plastic (GFRP) is used as an armature winding supports to avoid saturation of magnetic field density in the stator core and to reduce the weight and harmonics of the motor. However, GFRP air-core supporters make heat dissipation difficult due to the very low thermal conductivity of GFRP, which makes sustainable and stable operation of HTSSMs impossible. Therefore, in this paper, the concept of advanced air-core stator (AACS) is presented to enhance the cooling performance of a conventional GFRP air-core stator. The AACS concept pertains to the introduction of thermal conductive materials on an armature supporter to replace the GFRP material of a conventional air-core stator. The AACS concept structure for a 1.5-MW-class HTSSM was designed and analyzed using three-dimensional electromagnetic and thermal finite element method.
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