Analysis and optimization of a high-speed generator's cooling structure based on Taguchi method

To increase the power density of the original generator, it is desired to boost the generator's power to 1.2 times its original capacity. However, the cooling structure of the original generator cannot meet the heat dissipation requirements of the upgraded power level. It necessitates a redesig...

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Main Authors: Chenqi Tang, Zhongjun Yu, Jia Fu, Juntan Yang
Format: Article
Language:English
Published: Elsevier 2024-11-01
Series:Case Studies in Thermal Engineering
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Online Access:http://www.sciencedirect.com/science/article/pii/S2214157X24012814
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author Chenqi Tang
Zhongjun Yu
Jia Fu
Juntan Yang
author_facet Chenqi Tang
Zhongjun Yu
Jia Fu
Juntan Yang
author_sort Chenqi Tang
collection DOAJ
description To increase the power density of the original generator, it is desired to boost the generator's power to 1.2 times its original capacity. However, the cooling structure of the original generator cannot meet the heat dissipation requirements of the upgraded power level. It necessitates a redesign of the cooling structure. For the stator, water pipes through the stator core yoke are added; for the rotor, a novel rotor cooling structure is designed. The structure includes the groove bottom vent beneath the rotor excitation winding and the radial auxiliary grooves on the sides. The airflow passes through the groove bottom vent and then follows the radial auxiliary grooves until it reaches the air gap. It can efficiently remove the heat from the rotor excitation winding. The results of the new scheme are discussed. When comparing the new scheme with the original one, the highest temperature of the stator winding decreases by 20.6k, while the one of the rotor excitation winding does by 23.7K. To further improve the cooling structure, the Taguchi method is employed. The optimization variables include the area of the stator back vent, the number of radial auxiliary grooves, and the height of the groove bottom vent. The optimization objectives are the highest temperature of the stator winding, the highest temperature of the rotor excitation winding, the air friction loss, and the inlet-outlet static pressure difference. By analyzing the variance and range of the results, the improved scheme is obtained. Comparing the improved scheme with the new one, the temperature distribution difference between them is negligible. The improved scheme reduces the air frictional loss by 10.7 %, but increases the inlet-outlet static pressure difference by 8.0 %.
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institution Kabale University
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publishDate 2024-11-01
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series Case Studies in Thermal Engineering
spelling doaj-art-7f83e404bdbe4f798e5d00f2629a66c12024-11-14T04:31:45ZengElsevierCase Studies in Thermal Engineering2214-157X2024-11-0163105250Analysis and optimization of a high-speed generator's cooling structure based on Taguchi methodChenqi Tang0Zhongjun Yu1Jia Fu2Juntan Yang3National Key Laboratory of Electromagnetic Energy (Naval University of Engineering), Wuhan, ChinaCorresponding author.; National Key Laboratory of Electromagnetic Energy (Naval University of Engineering), Wuhan, ChinaNational Key Laboratory of Electromagnetic Energy (Naval University of Engineering), Wuhan, ChinaNational Key Laboratory of Electromagnetic Energy (Naval University of Engineering), Wuhan, ChinaTo increase the power density of the original generator, it is desired to boost the generator's power to 1.2 times its original capacity. However, the cooling structure of the original generator cannot meet the heat dissipation requirements of the upgraded power level. It necessitates a redesign of the cooling structure. For the stator, water pipes through the stator core yoke are added; for the rotor, a novel rotor cooling structure is designed. The structure includes the groove bottom vent beneath the rotor excitation winding and the radial auxiliary grooves on the sides. The airflow passes through the groove bottom vent and then follows the radial auxiliary grooves until it reaches the air gap. It can efficiently remove the heat from the rotor excitation winding. The results of the new scheme are discussed. When comparing the new scheme with the original one, the highest temperature of the stator winding decreases by 20.6k, while the one of the rotor excitation winding does by 23.7K. To further improve the cooling structure, the Taguchi method is employed. The optimization variables include the area of the stator back vent, the number of radial auxiliary grooves, and the height of the groove bottom vent. The optimization objectives are the highest temperature of the stator winding, the highest temperature of the rotor excitation winding, the air friction loss, and the inlet-outlet static pressure difference. By analyzing the variance and range of the results, the improved scheme is obtained. Comparing the improved scheme with the new one, the temperature distribution difference between them is negligible. The improved scheme reduces the air frictional loss by 10.7 %, but increases the inlet-outlet static pressure difference by 8.0 %.http://www.sciencedirect.com/science/article/pii/S2214157X24012814High-speed generatorAir coolingTemperature fieldTaguchi methodRadial auxiliary groove
spellingShingle Chenqi Tang
Zhongjun Yu
Jia Fu
Juntan Yang
Analysis and optimization of a high-speed generator's cooling structure based on Taguchi method
Case Studies in Thermal Engineering
High-speed generator
Air cooling
Temperature field
Taguchi method
Radial auxiliary groove
title Analysis and optimization of a high-speed generator's cooling structure based on Taguchi method
title_full Analysis and optimization of a high-speed generator's cooling structure based on Taguchi method
title_fullStr Analysis and optimization of a high-speed generator's cooling structure based on Taguchi method
title_full_unstemmed Analysis and optimization of a high-speed generator's cooling structure based on Taguchi method
title_short Analysis and optimization of a high-speed generator's cooling structure based on Taguchi method
title_sort analysis and optimization of a high speed generator s cooling structure based on taguchi method
topic High-speed generator
Air cooling
Temperature field
Taguchi method
Radial auxiliary groove
url http://www.sciencedirect.com/science/article/pii/S2214157X24012814
work_keys_str_mv AT chenqitang analysisandoptimizationofahighspeedgeneratorscoolingstructurebasedontaguchimethod
AT zhongjunyu analysisandoptimizationofahighspeedgeneratorscoolingstructurebasedontaguchimethod
AT jiafu analysisandoptimizationofahighspeedgeneratorscoolingstructurebasedontaguchimethod
AT juntanyang analysisandoptimizationofahighspeedgeneratorscoolingstructurebasedontaguchimethod