Numerical study on instantaneous heat transfer characteristics of AC arc-fault

Studying the heat transfer characteristics of alternating current (AC) arc-fault to electrodes is a key issue in electrical fires. In this paper, an instantaneous heat transfer numerical model of AC arc-fault is developed based on the magneto-hydrodynamic principle. The temperature distribution of t...

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Main Authors: Qirong Wu, Kai Yang, Rencheng Zhang, Ran Tu, Xuejin Zhou
Format: Article
Language:English
Published: AIP Publishing LLC 2021-09-01
Series:AIP Advances
Online Access:http://dx.doi.org/10.1063/5.0064412
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spelling doaj-5ac9b54a6d414fcfabd2436038cb8f8f2021-10-06T14:17:11ZengAIP Publishing LLCAIP Advances2158-32262021-09-01119095009095009-1110.1063/5.0064412Numerical study on instantaneous heat transfer characteristics of AC arc-faultQirong Wu0Kai Yang1Rencheng Zhang2Ran Tu3Xuejin Zhou4Key Laboratory of Process Monitoring and System Optimization for Mechanical and Electrical Equipment, Huaqiao University, Xiamen 361021, ChinaKey Laboratory of Process Monitoring and System Optimization for Mechanical and Electrical Equipment, Huaqiao University, Xiamen 361021, ChinaKey Laboratory of Process Monitoring and System Optimization for Mechanical and Electrical Equipment, Huaqiao University, Xiamen 361021, ChinaKey Laboratory of Process Monitoring and System Optimization for Mechanical and Electrical Equipment, Huaqiao University, Xiamen 361021, ChinaKey Laboratory of Process Monitoring and System Optimization for Mechanical and Electrical Equipment, Huaqiao University, Xiamen 361021, ChinaStudying the heat transfer characteristics of alternating current (AC) arc-fault to electrodes is a key issue in electrical fires. In this paper, an instantaneous heat transfer numerical model of AC arc-fault is developed based on the magneto-hydrodynamic principle. The temperature distribution of the AC arc at the microseconds level and the influence of heat transfer on electrodes at the seconds level when the arc heats are studied. The numerical simulation of the axial temperature of the electrodes is verified by experiments, and the temperature variation in the electrodes at different currents and times is discussed. The results show that the arc temperature varies periodically similar to the current at the microseconds level but it does not go out when the current passes zero. The high-temperature region of electrodes diffuses with the increase in current or time. However, the axial temperature gradient of the electrode decreases with time and increases with current. Furthermore, the range of temperature increase in the electrode position decreases with the increase in current and time, but the electrode position near the arc has a higher initial temperature increase.http://dx.doi.org/10.1063/5.0064412
collection DOAJ
language English
format Article
sources DOAJ
author Qirong Wu
Kai Yang
Rencheng Zhang
Ran Tu
Xuejin Zhou
spellingShingle Qirong Wu
Kai Yang
Rencheng Zhang
Ran Tu
Xuejin Zhou
Numerical study on instantaneous heat transfer characteristics of AC arc-fault
AIP Advances
author_facet Qirong Wu
Kai Yang
Rencheng Zhang
Ran Tu
Xuejin Zhou
author_sort Qirong Wu
title Numerical study on instantaneous heat transfer characteristics of AC arc-fault
title_short Numerical study on instantaneous heat transfer characteristics of AC arc-fault
title_full Numerical study on instantaneous heat transfer characteristics of AC arc-fault
title_fullStr Numerical study on instantaneous heat transfer characteristics of AC arc-fault
title_full_unstemmed Numerical study on instantaneous heat transfer characteristics of AC arc-fault
title_sort numerical study on instantaneous heat transfer characteristics of ac arc-fault
publisher AIP Publishing LLC
series AIP Advances
issn 2158-3226
publishDate 2021-09-01
description Studying the heat transfer characteristics of alternating current (AC) arc-fault to electrodes is a key issue in electrical fires. In this paper, an instantaneous heat transfer numerical model of AC arc-fault is developed based on the magneto-hydrodynamic principle. The temperature distribution of the AC arc at the microseconds level and the influence of heat transfer on electrodes at the seconds level when the arc heats are studied. The numerical simulation of the axial temperature of the electrodes is verified by experiments, and the temperature variation in the electrodes at different currents and times is discussed. The results show that the arc temperature varies periodically similar to the current at the microseconds level but it does not go out when the current passes zero. The high-temperature region of electrodes diffuses with the increase in current or time. However, the axial temperature gradient of the electrode decreases with time and increases with current. Furthermore, the range of temperature increase in the electrode position decreases with the increase in current and time, but the electrode position near the arc has a higher initial temperature increase.
url http://dx.doi.org/10.1063/5.0064412
work_keys_str_mv AT qirongwu numericalstudyoninstantaneousheattransfercharacteristicsofacarcfault
AT kaiyang numericalstudyoninstantaneousheattransfercharacteristicsofacarcfault
AT renchengzhang numericalstudyoninstantaneousheattransfercharacteristicsofacarcfault
AT rantu numericalstudyoninstantaneousheattransfercharacteristicsofacarcfault
AT xuejinzhou numericalstudyoninstantaneousheattransfercharacteristicsofacarcfault
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