首页> 外文会议>International Conference on Electrical Materials and Power Equipment >Interfacial Stress Between Conductor and Insulation material of GIS/ GIL Spacer Used in UHV
【24h】

Interfacial Stress Between Conductor and Insulation material of GIS/ GIL Spacer Used in UHV

机译:UHV中使用的GIS / GIL间隔物的导体和绝缘材料之间的界面应力

获取原文

摘要

The Ultra High Voltage (UHV) basin-type spacer, which has typical insulation structure existing in many power equipment, is an important component in gas insulated switchgear (GIS) and gas insulated transmission lines (GIL). The spacer consists of a central metal conductor and an epoxy insulation composite. In the hydrostatic failure test, the mechanical damage of UHV spacer often initiates from the interface between center conductor and insulation material. Therefore, in order to find the reason why mechanical strength of the spacer is low, the stress of UHV spacer during the hydrostatic test must be analyzed. The stress distribution of the spacer during hydrostatic test has been simulated and calculated. By comparing the stress distribution during the hydrostatic test and the damage pattern after hydrostatic test of UHV spacer, the residual stress between center conductor and insulation material should be the main factor of the failure. Then the stress after manufacture process of UHV spacer is analyzed. It is found that the stress concentration area at the interface should be caused by the difference of mechanical properties between the metal conductor and the insulation material. The maximum axial and radial shear stresses at the interface reach 15.8 MPa. Therefore, effective measures must be taken to relieve the interfacial stress between the center conductor and the insulation material. Meanwhile, this analytical method for the interfacial stress in this article can be applied to the similar interfacial structure of other power equipment.
机译:具有在许多电力设备中存在的典型绝缘结构的超高压(UHV)盆型间隔物是气体绝缘开关设备(GIS)和气体绝缘传输线(GIL)中的重要组成部分。间隔物由中央金属导体和环氧树脂绝缘复合材料组成。在静水衰竭试验中,UHV间隔物的机械损伤通常从中心导​​体和绝缘材料之间的界面引发。因此,为了找到垫片的机械强度低的原因,必须分析静水压试验期间的UHV间隔物的应力。已经模拟并计算了静水压试验期间间隔物的应力分布。通过比较静液压试验期间的应力分布和UHV间隔物静水压试验后的损伤模式,中心导体和绝缘材料之间的残余应力应该是故障的主要因素。然后分析了UHV间隔物的制造过程后的应力。发现界面处的应力集中区域应由金属导体和绝缘材料之间的机械性能差异引起。界面处的最大轴向和径向剪切应力达到15.8MPa。因此,必须采取有效措施来缓解中心导体和绝缘材料之间的界面应力。同时,本文中的界面应力的这种分析方法可以应用于其他电力设备的类似界面结构。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号