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Use of air chamber in gas-turbine units for frequency control and energy storage in a system with high wind penetration

机译:在高风速渗透系统中使用燃气轮机气室进行频率控制和能量存储

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The scope of this paper is to investigate the dynamic performance of a compressed-air chamber introduced to a gasturbine unit for enhancing frequency control capability, as well as for energy storage. The considered unit is part of an autonomous power system with high wind penetration. Two different configurations are studied: (a) a small-scale air chamber injecting compressed air into the combustion chamber in case of system disturbances, and (b) a conventional gasturbine unit combined with a large-scale air chamber for energy storage using a separate compressor driven by an electric motor. In the latter case, power is generated when required by expanding the stored air through a separate turbine, while the gas-turbine unit operates independently. In both cases, the autonomous system is simulated for the loss of a generating unit. It is found that the small air chamber significantly improves primary frequency control by providing increased spinning reserve, while configuration (b) exhibits improved post-disturbance response both in generation and in storage mode, while reducing fuel consumption and CO emissions.
机译:本文的范围是研究引入燃气轮机单元的压缩空气室的动态性能,以提高频率控制能力以及存储能量。所考虑的单元是具有高风速的自主电力系统的一部分。研究了两种不同的配置:(a)小规模的气室,在系统受到干扰的情况下将压缩空气注入燃烧室;(b)常规的燃气轮机单元与大规模的气室相结合,使用单独的储气罐进行能量存储由电动机驱动的压缩机。在后一种情况下,需要时,通过将存储的空气通过一个单独的涡轮膨胀来发电,而燃气轮机单元则独立运行。在这两种情况下,都会针对自治系统的发电单元损失进行仿真。发现小气室通过提供增加的旋转储备显着改善了主频率控制,而配置(b)在发电和存储模式下均表现出改善的扰动后响应,同时减少了燃料消耗和CO排放。

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