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Intelligent droop control and power management of active generator for ancillary services under grid instability using fuzzy logic technology

机译:电网不稳定性下辅助服务有源发电机智能下垂控制与功率管理的模糊逻辑技术

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In this paper, a control and power supervisor for a flexible operation of a Renewable Distributed Generator (FOG) is introduced. This RDG consists of a combination of a wind system and a hybrid storage system made up of Batteries (BT) and Super-Capacitors (SC). RDG is associated with a load and a fluctuating grid to form an Active Generator (AG). According to the grid fluctuation, AG can operate in a grid-connected and standalone mode. The objective of this work is to investigate a novel control strategy for AG integrated into the grid in order to maintain its voltage and frequency in an allowable range and to ensure the continuity of the power supply in case of a grid fault. The structure of the proposed control strategy consists of a Fuzzy Logic Supervisor (FLS), an adaptive Fuzzy Logic Droop Control (FLDC) and a Fuzzy Logic Islanding Detection (FLID). FLS is developed to manage the power flows between the storage devices by choosing the optimal operating mode, thereby ensuring the grid stability and the continuous supply of the load by maintaining the state of charge of SC and BT at acceptable levels and to reduce stresses on BT and improve their life cycle. FLID is used to detect de standalone mode in case of grid failure. Finally, FLDC is used to control the active and reactive powers exchanged with the grid, ensuring its stability by maintaining its frequency and its voltage in optimal margins. The effectiveness of the proposed control method is validated by simulation results and compared with a generalized control technique.
机译:本文介绍了一种可再生分布式发电机(FOG)灵活运行的控制和电源监控器。该RDG由风力系统和由电池(BT)和超级电容器(SC)组成的混合存储系统组成。 RDG与负载和波动的电网相关联,以形成有源发电机(AG)。根据电网波动,AG可以在并网和独立模式下运行。这项工作的目的是研究一种集成在电网中的AG的新颖控制策略,以将其电压和频率保持在允许的范围内,并在电网出现故障时确保电源的连续性。所提出的控制策略的结构包括模糊逻辑监控器(FLS),自适应模糊逻辑下降控制(FLDC)和模糊逻辑孤岛检测(FLID)。 FLS的开发旨在通过选择最佳操作模式来管理存储设备之间的功率流,从而通过将SC和BT的充电状态保持在可接受的水平来确保电网稳定性和负载的连续供应,并减少BT上的压力并改善他们的生命周期。 FLID用于在电网故障的情况下检测独立模式。最后,FLDC用于控制与电网交换的有功和无功功率,通过将其频率和电压保持在最佳裕度来确保其稳定性。仿真结果验证了所提控制方法的有效性,并与广义控制技术进行了比较。

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