Complete FEM-based model of a bulk-glass optical current transformer

被引:1
作者
Oppegard, Andre [1 ]
Katoulaei, Mohammad Khalili [1 ]
Oleinikova, Irina [1 ]
机构
[1] NTNU, Dept Elect Power Engn, Trondheim, Norway
来源
2022 INTERNATIONAL CONFERENCE ON SMART ENERGY SYSTEMS AND TECHNOLOGIES, SEST | 2022年
关键词
Digital Substation; Differential Protection; Optical Current Transformers; Faraday Rotation; Finite Element; Method (FEM);
D O I
10.1109/SEST53650.2022.9898449
中图分类号
TP301 [理论、方法];
学科分类号
081202 ;
摘要
This paper is focused on digital substation technologies, with a further attention to optical current transformers and their impact on differential protection performance. Optical current transformers (OPCT) have become more readily available in recent time. This transition from conventional current transformers requires the development of models to verify and evaluate the performance aspects of OPCTs. This paper presents a complete model of an open-core bulk-glass optical current transformer. The model is based of 2-D FEM design for the optical part and an experimentally obtained transfer function for the electronic part. The model is used to explore performance, interoperability with other current sensing technologies and error inducing nonlinearities caused by external sources. These external sources are vibration, temperature irregularities and external magnetic fields. In addition the complete OPCT model performance is compared to a model of a conventional current transformer. This comparison is executed in a real-time differential protection setting using playback of simulated transients over IEC61850 Sampled measured Values (SMV) protocol.
引用
收藏
页数:6
相关论文
共 15 条
  • [1] Arcteq, 2019, Aq-t257 instruction manual v2.01
  • [2] Ashraf H., 2017, Modeling and simulation of optical current transformer using operational amplifiers
  • [3] Research on the Modeling of the Faraday Effect Based on the OCT Used in Power System
    Cao, Li-xin
    Li, Yan-song
    Liu, Jun
    [J]. DESIGN, MANUFACTURING AND MECHATRONICS, 2014, 551 : 275 - 279
  • [4] Energy O., 2022, Omicron cm-line catalog
  • [5] Temperature Compensation of Optical Fiber Current Sensors With a Static Bias
    Jia, Qing
    Han, Qun
    Liang, Zhizhuang
    Cheng, Zhenzhou
    Hu, Haofeng
    Wang, Shuang
    Ren, Kun
    Jiang, Junfeng
    Liu, Tiegen
    [J]. IEEE SENSORS JOURNAL, 2022, 22 (01) : 352 - 356
  • [6] Kucuksari S., 2010, Development of models for optical instrument transformers
  • [7] Complete Model Development for an Optical Current Transformer
    Kucuksari, Sadik
    Karady, George G.
    [J]. IEEE TRANSACTIONS ON POWER DELIVERY, 2012, 27 (04) : 1755 - 1762
  • [8] Experimental Comparison of Conventional and Optical Current Transformers
    Kucuksari, Sadik
    Karady, George G.
    [J]. IEEE TRANSACTIONS ON POWER DELIVERY, 2010, 25 (04) : 2455 - 2463
  • [9] Li Min, 2018, 2018 IEEE 3rd Optoelectronics Global Conference (OGC), P126, DOI 10.1109/OGC.2018.8529978
  • [10] NEK, 2020, Communication networks and systems for power utility