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Utilisation of alkaline electrolysers to improve power system frequency stability with a high penetration of wind power

机译:利用碱性电解槽提高风力发电的穿透力,提高电力系统的频率稳定性

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Controlling the frequency of power systems with high wind power penetration is more difficult due to the high variability of the wind power. One possible mainstream energy carrier in the future, particularly for the transportation sector, is Hydrogen, and water electrolysis is one of the most attractive ways to produce it. In this study, a detailed model of a steam turbine generator has been produced in MATLAB Simulink and used to investigate a scenario in which there is a 25% penetration of wind power. To improve the frequency stability of the power system, large scale alkaline electrolysers used in future Hydrogen filling stations could adjust their load with respect to the frequency deviation from nominal and can significantly reduce fluctuations in system frequency. For the case examined, five times less spinning reserve is required in order to maintain the power system frequency within operational limits when electrolysers are utilised as a form of demand side management (DSM), compared to the base case where no electrolyser DSM plant is available. Actual operational data from a pressurised alkaline electrolyser is used to evidence the fast load changing capability of such electrolysers.
机译:由于风力的高可变性,控制具有高风力渗透的电力系统的频率更加困难。氢是未来一种可能的主流能源载体,特别是对于交通运输业而言,是氢,而水电解是生产这种能源的最有吸引力的方法之一。在这项研究中,已在MATLAB Simulink中生成了蒸汽轮发电机的详细模型,并用于研究风能渗透率为25%的情况。为了提高电力系统的频率稳定性,在未来的加氢站中使用的大型碱性电解槽可以根据与标称频率的频率偏差来调整其负载,并可以大大减少系统频率的波动。对于这种情况,与没有电解DSM装置的基本情况相比,当将电解器用作需求侧管理(DSM)形式时,为了将电力系统的频率保持在运行极限内,所需的旋转储备要少五倍。 。来自加压碱性电解槽的实际运行数据用于证明此类电解槽的快速负载变化能力。

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