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research article

Design and 3D printing of porous cavity insulation structure for ultra‐high electrical withstanding capability

Yang, Xiong
•
Sun, Guang-Yu  
•
Song, Baipeng
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2023
High Voltage

Vacuum-dielectric interface is the most vulnerable part of vacuum insulation systems where surface electrical breakdown is prone to happen, hence severely restricts the development of advanced electro-vacuum devices with large capacity and its miniaturisation. Generally, a direct and effective way to improve vacuum surface insulation is to alleviate the initiation and development of multipactor phenomena. Inspired by this approach, the authors report a 3D-printed insulation structure designed with a millimetre-scale surface cavity covered by periodic through-pore array via stereolithography, exhibiting remarkable multipactor suppression and flashover threshold improvement, well outperforming the conventional flashover mitigation strategies. Experiments and simulations demonstrate that electrons in the multipactor region pass through-pores and are unlikely to escape from the cavity, hence no longer participate in the above-surface multipactor process, and eventually improve flashover threshold. The proposed approach provides new inspiration for the design of advanced insulators featuring ultra-high electrical withstanding capability and brings up new insight into pertinent industrial applications.

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Type
research article
DOI
10.1049/hve2.12326
Author(s)
Yang, Xiong
Sun, Guang-Yu  
Song, Baipeng
Han, Wenhu
Wang, Chao
Li, Wendong
Zhang, Shu
Song, Falun
Zou, Fangzheng
Zhang, Guanjun
Date Issued

2023

Published in
High Voltage
Editorial or Peer reviewed

REVIEWED

Written at

OTHER

EPFL units
SPC  
Available on Infoscience
May 11, 2023
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/197609
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