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Modelling and benefits of combined operation of hydropower unit and battery energy storage system on grid primary frequency control

机译:电网一次频率控制的水电与电池储能系统联合运行的建模与效益

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Increasing amount of renewable energy generation reduces predictability of power generation in electrical grids. Increased error between production and consumption power balance is shown as fluctuation in the grid frequency. Transmission system operators use frequency containment reserves for grid frequency control. To be able to operate as a frequency control reserve, the reserve unit must fulfill the requirements defining the dynamic response. Conventional hydropower plants have limited control bandwidth because of massive mechanical control actuators. However, battery energy storage systems (BESS) are coupled to the electrical grid with power electronics devices, which can operate on the frequency containment reserve market with negligible limitations in the output power ramp rate. Combined operation of a BESS and a hydropower plant is a solution for dynamic requirements of frequency control units. This paper covers the modelling of the combined system of a BESS and a hydropower plant. This model is used for testing the fulfillment of outlined FCR-N market technical requirements as well as for simulation of combined operation in grid frequency control.
机译:越来越多的可再生能源产生可降低电网中发电的可预测性。生产和消费功率平衡之间的误差增加显示为电网频率的波动。传输系统操作员使用频率容纳储量进行网格频率控制。为了能够作为频率控制储备操作,储备单元必须满足定义动态响应的要求。由于机械控制致动器,传统的水电站具有有限的控制带宽。然而,电池储能系统(BESS)与电力电子设备耦合到电网,其可以在频率容纳储备市场上运行,其在输出功率斜坡率中具有可忽略的限制。 BESS和水电站的组合操作是用于频率控制单元的动态要求的解决方案。本文涵盖了贝尔斯和水电站的组合系统的建模。该型号用于测试概述的FCR-N市场技术要求的满足以及电网频率控制中的组合操作的仿真。

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