Temkina Valentina, Medvedev Andrei, Mayzel Alexey
Institute of Physics, Nanotechnology and Telecommunications, Peter the Great St.Petersburg Polytechnic University, 29 Polytechnicheskaya, 195251 St.Petersburg, Russia.
Sensors (Basel). 2020 Oct 22;20(21):5995. doi: 10.3390/s20215995.
An electromagnetic instrument transformer is a common device used to measure large current values in high-voltage electrical networks; it has been in use for more than a century. However, the optical current transformer, a promising technology also known as a fiber optic current sensor (FOCS), offers increased safety and ease of operation, as well as the absence of errors caused by the magnetic circuit of legacy transformers. Although the FOCS scheme is well known and has been actively developed for over a quarter century, it has certain disadvantages that limit its use. This paper describes the authors' efforts to solve these problems in order to make FOCS technology competitive and widely adopted. We upgraded the FOCS optical circuit, expanded the frequency band of the captured current signal, and reduced the solution's cost. We designed new signal processing algorithms to compensate for errors caused by internal factors in the measurement circuit, as well as those caused by environmental influences. We developed an FOCS computer model based on the Jones matrix formalism to enhance the experimental debugging. It allowed us to define the requirements for elements of the optical circuit and its production accuracy.
电磁式互感器是一种用于测量高压电网中大电流值的常用设备,已经使用了一个多世纪。然而,光学电流互感器,一种也被称为光纤电流传感器(FOCS)的有前途的技术,具有更高的安全性和操作便利性,并且不存在传统互感器磁路所导致的误差。尽管FOCS方案广为人知并且已经积极开发了超过四分之一个世纪,但它存在一些限制其应用的缺点。本文描述了作者为解决这些问题所做的努力,以使FOCS技术具有竞争力并得到广泛应用。我们升级了FOCS光路,扩展了捕获电流信号的频带,并降低了方案成本。我们设计了新的信号处理算法,以补偿测量电路内部因素以及环境影响所导致的误差。我们基于琼斯矩阵形式开发了一个FOCS计算机模型,以增强实验调试。它使我们能够确定光路元件的要求及其生产精度。