华电技术 ›› 2020, Vol. 42 ›› Issue (2): 50-57.

• 智能电力 • 上一篇    下一篇

智能电网继电保护控制设备硬件可靠性设计及测试

  

  1. 南京国电南自电网自动化有限公司,南京〓211153
  • 出版日期:2020-02-25 发布日期:2020-04-09

Reliability design and test for relay protection devices applied in smart grid

  1. Nanjing SAC Power Grid Automation Company Limited,Nanjing 211153,China
  • Online:2020-02-25 Published:2020-04-09

摘要: 继电保护控制设备作为电力系统的第一道防线,其长期可靠工作对于电力系统的安全、稳定运行至关重要。近些年随着智能电网、分布式能源等快速发展,对于设备综合性能要求越来越高,导致设备的集成度和复杂度日益提高;另外,一、二次设备融合以及继电保护控制设备就地安装的趋势,使得设备的运行环境也愈发恶劣,这些都对继电保护控制设备的可靠性提出了更高的要求。从设备硬件可靠性角度出发,介绍了设备中常见的采样系统、跳闸控制系统、开入开出回路的可靠性设计方法以及整机电磁兼容(EMC)设计、热设计、在线故障检测等设计思路,最后提出了设备可靠性设计的验证方法,形成了从需求、设计到验证的闭环开发流程,对于提升继电保护控制设备可靠性具有一定的指导价值。

关键词: 智能电网, 继电保护控制设备, 硬件可靠性设计, 硬件可靠性测试, 分布式能源, 智能电厂

Abstract: As the first defense line for power grid, the longterm reliable operation of relay protection device is very important for power grid. With the rapid development of smart grid and distributed energy system in recent years, the integration and complexity of the device is increasing as its comprehensive performance is more demanding. In addition, the requirement on primary and secondary equipment fusion and local installation of relay protection device leads to a harsher operation environment for the relay protection device and a higher demand on its reliability. The reliability designs for sampling systems, trip control systems, input and output circuits are introduced from the perspective of hardware reliability, and the design of electromagnetic compatibility(EMC), thermal design and online fault detection design are presented as well.The verification methods of the reliability design are proposed as the final step for a closedloop development process including requirements, design and verification,which offers a reference for improving the reliability of relay protection devices.

Key words: smart grid, relay protection device, hardware reliability design, hardware reliability test, distributed energy, intelligent power plant