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Time synchronization for transmission substations using GPS and IEEE 1588

机译:使用GPS和IEEE 1588的传输变电站的时间同步

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Time synchronization systems that utilize the global navigation satellite systems (GNSS) are widely used in the monitoring, control, and protection of transmission networks. They ensure that phasor measurement units (PMUs) can accurately monitor voltage phase angles, increase the accuracy of fault locators, enhance the capabilities of disturbance recorders, and allow differential feeder protection to use re-routable communication networks. However, concern about the reliability of GNSS receivers used in intelligent electronic devices (IEDs) have been reported; problems include mal-operations of differential protection, erroneous satellite timing/location messages, inappropriate installations, and blocking of satellite signals due to illegal use of GNSS jammers in vehicles. Utilities now require a timing system less dependent on the use of low cost GNSS receivers integrated into IEDs, but one that uses Grandmaster clocks, slave and transparent clocks, and an Ethernet communication network. The IEEE 1588-2008 synchronization protocol uses the Ethernet to disseminate a global time reference around a substation. A future substation will probably include duplicate 1588 grandmasters, each incorporating stable oscillators with GNSS and terrestrial receivers, in conjunction with a 1588 compliant Ethernet data network with slave and transparent clocks, and redundancy boxes for interfacing with IEDs. Although IEEE 1588 protocol is promising for future substation automation systems, its performance and impact has to be fully evaluated before it can be used in real substations. This paper describes how an IEEE 1588 time synchronization testbed is designed, constructed, and tested. Testing involves measuring the time offset when the Ethernet is heavily loaded with other traffic and the holdover capability of 1588 clocks. Additional delay introduced by IEEE 1588 traffic is also measured. As there is limited testing on GPS receivers within the power industry, this paper also uses the testbed to evaluate the steady state and transient behavior of GPS receivers. The results show a 1588 time synchronization system is accurate, secure, and ideally suited for protection and control applications, compared to a timing system merely based on GPS receivers. The information described in this paper should increase a utility's confidence in applying IEEE 1588 timing in a real substation.
机译:利用全球导航卫星系统(GNSS)的时间同步系统广泛用于传输网络的监视,控制和保护。它们确保相量测量单元(PMU)可以准确监视电压相角,提高故障定位器的精度,增强故障记录器的功能,并允许差分馈线保护装置使用可重新路由的通信网络。但是,已经报道了对用于智能电子设备(IED)的GNSS接收机可靠性的担忧;问题包括差动保护误操作,错误的卫星定时/位置消息,不适当的安装以及由于在车辆中非法使用GNSS干扰器而导致的卫星信号阻塞。现在,公用事业需要一种计时系统,该计时系统较少依赖于集成到IED中的低成本GNSS接收器的使用,而是一种使用Grandmaster时钟,从属和透明时钟以及以太网通信网络的计时系统。 IEEE 1588-2008同步协议使用以太网在变电站周围传播全局时间基准。未来的变电站可能包括重复的1588超级主机,每个超级主机都集成了带有GNSS和地面接收器的稳定振荡器,以及带有从属和透明时钟的1588兼容以太网数据网络,以及用于与IED接口的冗余盒。尽管IEEE 1588协议对于未来的变电站自动化系统很有希望,但是在将其用于实际变电站之前,必须对其性能和影响进行全面评估。本文介绍了如何设计,构建和测试IEEE 1588时间同步测试平台。测试涉及测量以太网负载其他流量时的时间偏移和1588时钟的保持能力。还测量了IEEE 1588流量引入的其他延迟。由于电力行业中对GPS接收器的测试有限,因此本文还使用测试台评估GPS接收器的稳态和瞬态行为。结果表明,与仅基于GPS接收器的计时系统相比,1588时间同步系统准确,安全并且非常适合保护和控制应用。本文中描述的信息应提高公用事业公司在实际变电站中应用IEEE 1588时序的信心。

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