1. 输变电装备技术全国重点实验室(重庆大学),重庆,400044
2. 贵州电网有限责任公司电力科学研究院,贵阳,550025
纸质出版:2025
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郑瑞峰, 赵学童, 李波, 等. 盆式绝缘子气孔缺陷的红外热波检测[J]. 高电压技术, 2025,51(12):5913-5928.
郑瑞峰, 赵学童, 李波, et al. 盆式绝缘子气孔缺陷的红外热波检测[J]. 2025, 51(12): 5913-5928.
郑瑞峰, 赵学童, 李波, 等. 盆式绝缘子气孔缺陷的红外热波检测[J]. 高电压技术, 2025,51(12):5913-5928. DOI: 10.13336/j.1003-6520.hve.20250150.
郑瑞峰, 赵学童, 李波, et al. 盆式绝缘子气孔缺陷的红外热波检测[J]. 2025, 51(12): 5913-5928. DOI: 10.13336/j.1003-6520.hve.20250150.
盆式绝缘子是气体绝缘开关(gas-insulated switchgear,GIS)的核心部件,具有绝缘、支撑以及隔离等作用。随着GIS安装量逐年增加,因盆式绝缘子近表面缺陷导致的GIS故障问题随之凸显。因此,开展盆式绝缘子近表面缺陷的无损检测与辨识研究至关重要。为此通过有限元仿真建立了环氧浇注盆式绝缘子模型,设置了不同的近表面气隙缺陷,分别计算了绝缘子表面的温度动态分布特性,揭示了红外热波能量在含气隙缺陷绝缘子模型中的传导规律,提出了基于增强热像图和表面温度分布的缺陷辨识方法。研究发现,在外部热激励作用下,近表面气隙缺陷的存在使盆式绝缘子表面出现可辨识的温度差异,缺陷的深度和直径会影响绝缘子表面温度的异常分布,发现红外热像图和表面温度分布规律与绝缘子近表面气隙缺陷密切相关。基于盆式绝缘子近表面气隙缺陷区域的温度变化,获得了不同缺陷参数对最大温差及最大温差出现时间的影响规律,建立了最大温差评估模型,并验证了模型的有效性,为实际盆式绝缘子的红外热波检测及后续的现场试验研究提供了理论指导。
The basin-type insulator is a core component of gas-insulated switchgears (GIS)
serving as insulation
support
and isolation. With the increasing application of GIS
the issue of GIS failures becomes prominent due to subsurface defects in basin-type insulators. Therefore
it is important to carry out the research on the nondestructive test and identification of subsurface defects in basin-type insulators. In this paper
the finite element simulation is used to establish an epoxy basin-type insulator model with various subsurface air cavities. The dynamic temperature distribution characteristics on the surface of basin-type insulators are calculated
revealing the conduction pattern of infrared thermal wave energy in the basin-type insulator model. A defect identification method based on the improved infrared thermal image and surface temperature distribution of the basin-type insulator model is proposed. The results show that
under the external thermal excitation
the difference of temperature distribution on the air defect area of basin-type insulators can be identifiable. The inhomogeneous temperature distribution on the surface of basin-type insulators is greatly influenced by the depth and diameter of the air defects. Moreover
it is found that the infrared thermography and surface temperature distribution are closely related with the subsurface defects. Based on the surface temperature variation of the air defect area of basin-type insulators
the effects of different defect parameters on the maximum temperature difference and the time to reach the maximum temperature difference are achieved. Thus
the maximum temperature difference evaluation model for the basin-type insulator is established
and the validity of the model is verified. This research provides the theoretical guidance for the application of the infrared thermal wave detection in basin-type insulator and subsequent field test.
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