|
|
Research on arc fault simulation device based on double closed loop control with displacement and speed |
YANG Yu1, SU Jingjing1,2 |
1. College of Computer and Control Engineering, Minjiang University, Fuzhou 350108; 2. Zhejiang Institute of Mechanical & Electrical Engineering Co., Ltd, Hangzhou 310051 |
|
|
Abstract Aiming at the complicated problem of arc signal acquisition in building fault arc research, an AC/DC series arc fault generation device is developed based on fault arc fire. The device is composed of mechanical fault arc generator, control and state detection module, signal acquisition module, main circuit and control circuit and upper computer. In order to solve the problems of difficulty in starting arc and short arc time during arc simulation, the control program of upper computer adopts double closed-loop proportional integral differential (PID) control strategy, and adds sensor-assisted control on the basis of it to improve the operating performance of arc burning device. Many experiments show that the device can produce fault arc under different experimental currents, and the arc burning time can reach the set time. Meanwhile, the device can collect the fault arc voltage and current waveform for the study of fault arc detection technology.
|
Received: 10 October 2023
|
|
|
|
Cite this article: |
YANG Yu,SU Jingjing. Research on arc fault simulation device based on double closed loop control with displacement and speed[J]. Electrical Engineering, 2023, 24(12): 35-41.
|
|
|
|
URL: |
http://dqjs.cesmedia.cn/EN/Y2023/V24/I12/35
|
[1] 于建华, 公安部消防局. 中国消防年鉴[M]. 北京: 国际文化出版公司, 2010. [2] 张振宇. 轨道交通车站电气火灾监控系统误报诊断探讨[J]. 电气技术, 2018, 19(10): 106-107, 111. [3] 沈阳, 曹菲菲. 基于因子分析的全国火灾统计[J]. 消防科学与技术, 2012, 31(5): 532-535. [4] 谭秋秋. 低压电弧故障检测方法及装置[D]. 济南: 山东建筑大学, 2017. [5] 余琼芳, 胡亚倩, 杨艺. 低压交流串联故障电弧检测概述[J]. 电器与能效管理技术, 2020(1): 24-30. [6] 电气火灾监控系统第4部分: 故障电弧探测器: GB 14287 GB 14287.4—2014[S]. 北京: 中国标准出版社, 2014. [7] 谢振华, 苏晶晶, 傅炳, 等. 两种电弧故障保护电器的对比分析[J]. 电气技术, 2020, 21(12): 62-67. [8] 李文瑞, 崔欢欢. 故障电弧探测器与故障电弧保护装置在工程中的应用分析[J]. 智能建筑电气技术, 2022, 16(2): 56-58. [9] 刘官耕, 杜松怀, 苏娟, 等. 低压电弧故障防护技术研究与发展趋势[J]. 电网技术, 2017, 41(1): 305-313. [10] 熊庆, 陈维江, 汲胜昌, 等. 低压直流系统故障电弧特性、检测和定位方法研究进展综述[J]. 中国电机工程学报, 2020, 40(18): 6015-6027. [11] 周天豪, 杨智, 祝长生, 等. 电磁轴承高速电机转子系统的内模-PID控制[J]. 电工技术学报, 2020, 35(16): 3414-3425. [12] 李萍, 刘国忠. 基于TMS320F28335无刷直流电动机换向调速系统设计[J]. 电气技术, 2015, 16(7): 27-30, 34. [13] 刘晓明, 徐叶飞, 刘婷, 等. 基于电流信号短时过零率的电弧故障检测[J]. 电工技术学报, 2015, 30(13): 125-133. [14] 赵杰, 董继民, 张延平. 基于多种电气增量融合判据的电弧故障诊断方法[J]. 电气技术, 2022, 23(2): 79-87. [15] KHAKPOUR A, FRANKE S, GORTSCHAKOW S, et al.An improved arc model based on the arc dia- meter[J]. IEEE Transactions on Power Delivery, 2016, 31(3): 1335-1341. |
|
|
|