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Assessment of primary response capability of generating units for dynamic allocation of spinning reserves in the Cyprus power system

机译:评估塞浦路斯电力系统中动态分配旋转备用发电机组的主要响应能力

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This paper describes a methodology to derive the primary response capabilities of generating units in the Cyprus TSO system. This is important from the standpoint of assessing the amount of operating reserve that will be available to support the system in the first few seconds following a disturbance. Conventional thinking is that the entire spinning reserve (maximum capability of the on-line units minus the outputs or dispatched MWs) is available for achieving frequency recovery (or load-generation balance). But the amount of additional output from each generating unit (within seconds) depends upon its primary response capability. Hence, operating a system with larger amount of spinning reserve, without considering primary response capability of the on-line units, may not prevent under-frequency load shedding. Furthermore, carrying more reserve than is needed also results in higher operating costs. Thus, knowledge of primary response capabilities of the generating units is essential for determining the primary operating reserve requirements both on system-wide level and on a generating unit level (for example, more primary operating reserve on units with high primary response capabilities). This is especially critical for islanded and small to medium sized systems where generation outages or loss of tie-lines cause significant frequency excursions. Averting frequency collapse due to sudden generation outages by proper allocation of primary reserves among generating units have been demonstrated by actual case studies. The results of these studies are supported by interpretation of system behavior following actual system disturbances. The paper describes the results of these investigations.
机译:本文介绍了一种推导塞浦路斯TSO系统中发电机组主要响应能力的方法。从评估在故障发生后的最初几秒钟内可用于支持系统的运行储备量的角度来看,这一点很重要。传统的想法是,整个旋转储备(在线机组的最大能力减去输出或分配的兆瓦数)可用于实现频率恢复(或负载生成平衡)。但是每个发电单元的额外输出量(在几秒钟内)取决于其主要响应能力。因此,在不考虑在线单元的主要响应能力的情况下,运行具有较大旋转储备量的系统可能无法防止低频负载下降。此外,携带过多的储备金也将导致更高的运营成本。因此,对于确定系统级和发电机组一级的主要运行储备要求(例如,具有较高的主要响应能力的机组具有更多的主要运行储备),了解发电机组的主要响应能力至关重要。这对于孤岛和中小型系统尤其重要,在这些系统中,发电中断或联络线丢失会导致明显的频率偏移。实际案例研究表明,通过在发电机组之间适当分配一次储备,可以避免由于突然停电而导致的频率崩溃。这些研究的结果得到了实际系统干扰后系统行为的解释的支持。本文介绍了这些调查的结果。

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