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FBG-based fibre-optic current sensors for power systems protection : laboratory evaluation

机译:用于电力系统保护的基于FBG的光纤电流传感器:实验室评估

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摘要

Conventional differential current unit protection schemes rely on a pair of electronic protection relays that measure current phasors separately at the boundaries of the protected zone. The scheme requires a separate, often optical, communications channel for the sharing of measurement information to enable the timely identification of and reaction to internal faults. The high voltage environment that the transducers must operate in poses a number of engineering problems stemming from the need for electrical isolation and requirement for transformation of high primary system current magnitudes. Additionally, when either the number of relays or distance between relays is increased, timing problems can arise due to the limited bandwidth, speed and changeable latencies of the communication channels and the increased computation requirements. Fibre-optical sensor systems are maturing as a technology and offer a number of advantages over conventional electronic sensor regimes, including the possession of inherent electrical isolation, chemical inertness, immunity to electromagnetic interference, and their small size and serial multiplexing capability. Fibre sensor systems are therefore experiencing increased uptake in industries that operate in harsh environments, such as oil and gas, or where specific requirements such as large step-out distances or resistance to radiation prohibit the use of electronic sensors. The Advanced Sensors Team within the Institute for Energy and Environment has developed fibre-optic point sensors for voltage and electrical current, based on fibre Bragg grating (FBG) technology, that have been applied successfully to power systems diagnostics. With the photonic systems capability to interrogate up to 100 km from source at kHz sample rates with up to 30 sensors in series, it is possible and highly desirable to adapt this technology for use in power systems protection, where immediate applications in unit and distance protection are clear. In this paper, the application of the FBG-based hybrid current sensor system to power systems protection is presented for the first time. Experimental tests of the response of an optical unit protection system to a range of internal and external fault scenarios are also reported. Secondary current inputs to the system are modelled using ATP and injected into the prototype test system via an APTS3 (Advanced Protection Testing System) unit. Fibre sensors, separated optically by 24 km of fibre, provide all measurement information via a single interrogation system situated at one end of the protected zone. Experimental results confirm high performance of the optical unit protection both in terms of sensitivity to internal faults and stability under external fault conditions. Therefore, the systems ability to overcome problems experienced in electronic relaying systems using conventional current sensing technologies is demonstrated. No separate communications channel is required in this configuration, with fault algorithms being deployed only at one location that need not be close to the protected zone. The fibre-optic current sensor systems capacity for long-distance interrogation and high sensor count qualify it for further applications in more complex protection schemes, or over larger distances, where a single fibre could form the basis of highly novel distributed protection schemes. This potential will also be discussed in detail in the paper.
机译:常规的差分电流单元保护方案依赖于一对电子保护继电器,该继电器分别在保护区的边界处测量电流相量。该方案需要一个单独的,通常是光学的通信通道,用于共享测量信息,以便能够及时识别内部故障并对其做出反应。换能器必须在高压环境下工作,这引起了许多工程上的问题,这些问题源于对电气隔离的需求以及对高一次系统电流幅度的转换的需求。另外,当中继器的数量或中继器之间的距离增加时,由于通信信道的带宽,速度和可改变的等待时间有限以及增加的计算需求而可能出现时序问题。光纤传感器系统作为一种技术正在日趋成熟,并提供了优于常规电子传感器方案的许多优势,包括具有固有的电隔离性,化学惰性,抗电磁干扰性,小尺寸和串行多路复用能力。因此,光纤传感器系统在诸如石油和天然气等恶劣环境下运行,或者在诸如大步距或抗辐射性等特殊要求禁止使用电子传感器的行业中,其吸收越来越多。能源与环境研究所的高级传感器团队基于光纤布拉格光栅(FBG)技术开发了用于电压和电流的光纤点传感器,该传感器已成功应用于电力系统诊断。凭借光子系统能够以kHz采样率从源头以100 kHz的距离探询长达100 km的信号,有可能并且非常希望将这项技术应用于电力系统保护中,在电力系统保护中立即应用在单位和距离保护中很清楚本文首次介绍了基于FBG的混合电流传感器系统在电力系统保护中的应用。还报告了光学单元保护系统对一系列内部和外部故障情况的响应的实验测试。使用ATP对系统的二次电流输入进行建模,并通过APTS3(高级保护测试系统)单元将其注入原型测试系统。光纤传感器之间以24 km的光纤隔开,通过位于保护区一端的单个询问系统提供所有测量信息。实验结果证实了光学单元保护装置在对内部故障的敏感性和在外部故障条件下的稳定性方面的高性能。因此,证明了该系统克服了使用常规电流感测技术的电子中继系统中遇到的问题的能力。在此配置中,不需要单独的通信通道,并且故障算法仅部署在不需要靠近保护区的一个位置。光纤电流传感器系统具有长距离询问和高传感器数量的能力,使其有资格进一步应用于更复杂的保护方案或更大的距离,在这种情况下,单根光纤可以构成高度新颖的分布式保护方案的基础。该潜力还将在本文中详细讨论。

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