首页> 外文期刊>International review of electrical engineering >Air Gap Magnetic Field - Key Parameter for Synchronous and Asynchronous Machine Fault Detection
【24h】

Air Gap Magnetic Field - Key Parameter for Synchronous and Asynchronous Machine Fault Detection

机译:气隙磁场-同步和异步电机故障检测的关键参数

获取原文
获取原文并翻译 | 示例
获取外文期刊封面目录资料

摘要

Calculations and measurements of a magnetic field at specific places in a machine air gap have been performed in order to determine magnetic field sensitivity to machine geometry and fault occurrence. Installation of measuring coils and a Hall sensor on and around the stator tooth, around stator yoke and the pole shoe has been considered. Firstly, a series of numerical simulations based on the FEM model were conducted for various positions of the embedded sensors. In order to confirm results of the FEM calculation, measurements on a real machine were performed. There was a good agreement between the results obtained by the measurement and the results obtained by the FEM. Calculations and measurements were conducted for various operating states: idling and rated load, as well as for the normal and faulty state. In this paper it is shown that the machine air gap is a key place for monitoring the magnetic field and a main source of reliable information about a machine condition. It is also demonstrated that the measurement sensitivity to the machine construction effects becomes lower as a distance from the air gap increases. The best measurement sensitivity has been obtained by monitoring a flux density distribution from the stator tooth. On the other hand, the lowest sensitivity has been obtained with the measuring coil embedded around the stator yoke. In the case of inter-turn short circuit of the armature winding, results obtained by measuring magnetic field in the air gap from the rotor side were more sensitive to the fault occurrence than those obtained from the stator side.
机译:为了确定磁场对机器几何形状和故障发生的敏感性,已经对机器气隙中特定位置的磁场进行了计算和测量。已经考虑在定子齿上和周围,定子轭和极靴周围安装测量线圈和霍尔传感器。首先,针对嵌入式传感器的各个位置,进行了基于有限元模型的一系列数值模拟。为了确认FEM计算的结果,在真实的机器上进行了测量。通过测量获得的结果与通过FEM获得的结果之间有很好的一致性。针对各种运行状态(空转和额定负载)以及正常和故障状态进行了计算和测量。本文表明,机器气隙是监测磁场的关键位置,并且是有关机器状态的可靠信息的主要来源。还证明,随着距气隙的距离增加,对机械构造效果的测量灵敏度变低。通过监视来自定子齿的磁通密度分布,可以获得最佳的测量灵敏度。另一方面,将测量线圈嵌入定子磁轭周围可获得最低的灵敏度。在电枢绕组的匝间短路的情况下,通过测量来自转子侧的气隙中的磁场而获得的结果比从定子侧获得的结果对故障的发生更加敏感。

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