Loading [MathJax]/extensions/MathZoom.js
Development method and comparative analysis of measurement accuracy of new broadband and wide range current transformers | IEEE Conference Publication | IEEE Xplore

Development method and comparative analysis of measurement accuracy of new broadband and wide range current transformers


Abstract:

The accuracy, safety, and reliability of current transformer metering are related to the accurate operation of secondary relay protection equipment and the fairness of po...Show More

Abstract:

The accuracy, safety, and reliability of current transformer metering are related to the accurate operation of secondary relay protection equipment and the fairness of power trade settlement. However, at present, many power users have a load that exceeds 120% of the rated current or less than 1% of the rated current. At the same time, a large number of power electronic equipment access to the distribution network injected a large number of harmonic components, the frequency range is large. For these situations, the traditional current transformer may not be accurate and must be developed for the power system frequency wide, the current fluctuation range of the wide frequency, wide range current transformer. Therefore, this paper researches the design of passive and active compensation technology and devices for wide frequency and wide range current transformers, and prototypes the passive electric type compensation current transformers and active electronic type compensation current transformers. On this basis, the paper also carries out the corresponding wide frequency and wide range measurement accuracy test verification and analyzes the performance of the two types of current transformers based on the test results, which provides a solution for the practical application of wide frequency and wide range current transformers.
Date of Conference: 16-18 December 2022
Date Added to IEEE Xplore: 07 February 2023
ISBN Information:
Conference Location: Shanghai, China
References is not available for this document.

I. Introduction

As an indispensable link in the power system, the distribution network receives electrical energy from the transmission grid and distributes it to various customers locally or by voltage step by step through distribution facilities. Among them, the 10 kV distribution network is used to supply electricity to urban and rural residents and is closely related to their lives [1]–[2]. In the 10 kV distribution network, the current transformer assumes the important role of transmitting the current information on the primary and secondary sides and is the guarantee of safe operation of the power system. It converts the AC current of the primary system into the AC current of the secondary system proportionally for use in various secondary systems, including protection systems, measurement systems, and metering systems. At the same time, the current transformer has the function of ensuring personal safety.

Select All
1.
Cheng Zhiyuan, Sui Licheng, Song Kai, Wu Longfei and Wu Xiaoting, "Study of resonant compensated current transformer energy extraction method[J]", Power Grid Technology, vol. 45, no. 12, pp. 4896-4902, 2021.
2.
Li Mingjie, Tao Hongzhu, Xu Hongqiang, Liu Jinbo, Zhang Qiang and Zhang Wei, "Framework and application prospect of artificial intelligence technology in the field of power grid regulation and control[J]", Power Grid Technology, vol. 44, no. 02, pp. 393-40, 2020.
3.
Li Zhen, Li Qingmin, Li Changyun, Sun Qiuqin and Lou Jie, "A study on the questioning and correction method of J-A magnetization modeling theory[J]", Chinese Journal of Electrical Engineering, vol. 3, pp. 124-131, 2011.
4.
Rao Hong, Zhou Yuebin, Li Weiwei, Zou Changyue and Wang Zeqing, "Engineering application and development prospect of flexible DC transmission technology [J/OL]", Power System Automation, vol. 1–14, pp. 2022-1101.
5.
Rao Hong, Huang Weihuang, Guo Zhifei and Zhou Yuebin, "Application and practice of flexible DC transmission technology in large power grids[J]", HighVoltage Technology, vol. 48, no. 09, pp. 3347-3355, 2022.
6.
Chen Jiaqi, Jia Chunrong, Di Zhigang, Liu Jiteng and Zhuoyue, "Current status and development trend of electronic current transformer application[J]", Electronic measurement technology, vol. 45, no. 17, pp. 144-152, 2022.
7.
Hu Kaibo, Xia Zhiling, Tang Xiabng and Meng Pengjun, "Research and application of SSD model-based diagnosis method for non-faulty line current transformer saturation[J]", Electrical Times, no. 07, pp. 80-83, 2022.
8.
U D Annakkage, P G Mclaren, E Dirks, R.P Jayasinghe and A.D. Parker, "A current transformer model based on the Jiles-Atherton theory of ferromagnetic hysteresis[J]", IEEE Transactions on Power Delivery, vol. 15, no. 1, pp. 57-61, 2000.
9.
Zhou Yingzi, Jia Feng and Ji Huiyu, "Design and simulation of iron core current transformer for high precision measurement[J]", Electrical Appliance and Energy EfficiencyManagement Technology, vol. 2022, no. 01, pp. 47-50.
10.
Chen Lixiang, Wu Danyue and Shao Zhenguo, "Modeling and experimental validation of harmonic transformation of current transformer based on J-A dynamic hysteresis model[J]", Electrical Technology, vol. 2016, no. 08, pp. 14-18+23.
11.
Xiong Lan, Zhou Jianyao, Song Daojun, Xi Chaohui and Yao Shuyou, "Modeling and experimental analysis of current transformers based on improved J-A hysteresis model[J]", High Voltage Technology, vol. 40, no. 2, pp. 482-488, 2014.
12.
Lou Jie and Chen Changtao, "Optimization analysis and experimental verification of current transformer energy extraction power based on starting current [J]", High Voltage Technology, vol. 44, no. 06, pp. 1774-1781, 2018.
Contact IEEE to Subscribe

References

References is not available for this document.