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Modulated Low Fault-Energy Protection Scheme for DC Smart Grids

机译:直流智能电网的调制式低故障能量保护方案

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摘要

DC smart grids enabled by the integration of advanced power electronic converters (PECs) can ease the integration and control of distributed renewable energy resources, electric vehicles, and energy storage systems. However, these highly flexible power systems introduce many challenges when considering the design of reliable, plug-and-play protection that does not rely on dedicated communications infrastructure for device coordination. One particularly difficult challenge is the management of dc-side filter capacitor discharge during short-circuit faults where the large peak fault-current produced can permanently damage exposed semiconductor components within the converter. One solution is to ensure that the trip-time of dc protection devices is sufficiently rapid (sub-millisecond) to guarantee that fault-current is blocked prior to reaching destructive magnitudes. However, such high-speed protection devices do not offer much margin for effective selectivity with downstream devices due to the narrow time window of operation. Accordingly, this paper proposes a non-unit protection scheme for future large-scale dc smart grid applications that increases this time-window of operation to enable improved selectivity whilst retaining a lower level of energy dissipated in the fault. Reliable protection coordination is demonstrated on a dc radial network and is realized using conventional millisecond trip-time devices, and a single solid-state microsecond trip-time device.
机译:集成了高级电力电子转换器(PEC)的直流智能电网可以简化分布式可再生能源,电动汽车和储能系统的集成和控制。但是,这些高灵活性的电源系统在考虑可靠的即插即用保护设计时提出了许多挑战,这些保护不依赖专用的通信基础设施来进行设备协调。一个特别困难的挑战是短路故障期间直流侧滤波电容器放电的管理,在短路故障中,产生的大峰值故障电流会永久损坏转换器中裸露的半导体组件。一种解决方案是确保直流保护设备的跳闸时间足够快(不到毫秒),以确保在达到破坏性幅度之前就可以隔离故障电流。然而,由于操作时间窗口窄,因此这种高速保护装置对于与下游装置的有效选择性没有太大的余地。因此,本文针对未来的大型直流智能电网应用提出了一种非单元保护方案,该方案增加了运行时间,从而提高了选择性,同时又保留了故障中较低的能量消耗。在直流径向网络上演示了可靠的保护协调,并使用常规的毫秒跳闸时间设备和单个固态微秒跳闸时间设备来实现。

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