|
|
Research and implementation of high-availability seamless redundancy ring network performance test platform in smart substation |
ZHANG Feng1, XU Chen2, MU Yunlong3, CHEN Hongbo1, LI De4 |
1. Electric Power Research Institute of State Grid Anhui Electric Power Co., Ltd, Hefei 230000; 2. Anhui Xinli Electric Technology Consulting Co., Ltd, Hefei 230000; 3. Maintenance Branch of State Grid Anhui Electric Power Co., Ltd, Hefei 230000; 4. Wuhan Kemov Electric Co., Ltd, Wuhan 430223 |
|
|
Abstract High-availability seamless redundancy ring network is one of the important links in outdoor installation protection of smart substation, and its performance directly affects the normal operation of relay protection devices. Aiming at the problem that ordinary network test equipment cannot perform ring network performance evaluation, a hardware test platform based on field programmable gate array and multi-core digital signal processor is designed according to the working mechanism of high-availability seamless redundancy ring network. The test method is determined by analyzing the principles of throughput, time delay, packet loss rate and error frame monitoring. The software is implemented following characteristics of each processor. The verification results show that the test platform designed in this paper can realize the performance evaluation of the ring network and ensure the reliable operation of the outdoor installation protection equipment of the smart substation.
|
Received: 17 September 2020
|
|
|
|
Cite this article: |
ZHANG Feng,XU Chen,MU Yunlong等. Research and implementation of high-availability seamless redundancy ring network performance test platform in smart substation[J]. Electrical Engineering, 2021, 22(4): 43-49.
|
|
|
|
URL: |
http://dqjs.cesmedia.cn/EN/Y2021/V22/I4/43
|
[1] ZHANG Baohui, HAO Zhiguo, BO Zhiqian.New development in relay protection for smart grid[J]. Protection and Control of Modern Power Systems, 2016, 1(14): 1-7. [2] 曹军. 配电网嵌入式IEC 61850智能规约转换网关设计[J]. 电气技术, 2019, 20(11): 62-67. [3] 浮明军, 王龙飞, 姬希娜, 等. 就地化保护环网通信异常分析及处理策略[J]. 电力系统自动化, 2019, 43(7): 179-184. [4] 张旭泽, 郑永康, 康小宁, 等. 智能变电站继电保护系统所面临的若干问题[J]. 电力系统保护与控制, 2018, 46(6): 90-96. [5] 陈泽华, 陈勇, 罗建平, 等. 就地化保护工厂化测试系统技术研究及应用[J]. 电气技术, 2020, 21(8): 113-117, 124. [6] 卜强生, 宋爽, 高磊, 等. 就地化保护装置流水线测试系统研制[J]. 电力系统自动化, 2018, 42(20): 177-183. [7] 裘愉涛, 王德林, 胡晨, 等. 无防护安装就地化保护应用与实践[J]. 电力系统保护与控制, 2016, 44(20): 1-5. [8] 郑玉平, 吴通华, 戴魏, 等. 变电站二次设备就地化系统网络架构探讨[J]. 电力系统自动化, 2017, 41(16): 20-26. [9] 张卅, 张惠刚, 李忠安. 智能变电站并行冗余网络的研究与实现[J]. 电气技术, 2018, 19(8): 109-113. [10] 何君, 刘明慧, 祁忠. 智能变电站网络分析与故障录波一体化系统设计与实现[J]. 电气技术, 2018, 19(8): 145-148. [11] 莫峻, 蔡义明. 计及瞬时通信故障的变压器保护可靠性评估[J]. 电工技术学报, 2019, 34(4): 807-816. [12] SENTHIL K, BWANDAKASSY E B.IEC 61850 standard-based harmonic blocking scheme for power transformers[J]. Protection and Control of Modern Power Systems, 2019, 4(10): 1-15. [13] Industrial communication networks-high availability automation networks:IEC 62439—3—2016[S]. 2016. [14] 杨世皓, 邹晓峰, 陈玉峰, 等. HSR在第三代智能站中的实现技术[J]. 电测与仪表, 2019, 56(22): 51-57. [15] 裘愉涛, 徐凯, 陈福锋, 等. 基于双向环网的变压器保护就地化实现方案[J]. 电力系统自动化, 2017, 41(16): 41-45, 122. [16] 周小波, 汪思满, 吴正学, 等. 环网分布式母线保护装置就地化实现探讨[J]. 电力系统保护与控制, 2015, 43(6): 104-108. [17] 金能, 梁宇, 邢家维, 等. 提升配电网线路保护可靠性的远方保护及其与就地保护优化配合方案研究[J]. 电工技术学报, 2019, 34(24): 5221-5233. [18] 张恒, 蔡志平, 李阳. SDN网络测量技术综述[J]. 中国科学(信息科学), 2018, 48(3): 293-314. |
|
|
|