Department of Electrical Engineering, College of Engineering Technology, Saveh Branch, Islamic Azad University, Saveh, Iran.
PLoS One. 2024 Oct 10;19(10):e0311584. doi: 10.1371/journal.pone.0311584. eCollection 2024.
In the proposed protection coordination scheme, the depreciation of the operation time of the entire relay in the primary and backup protection modes for all possible fault locations is considered as the objective function. The limitations of this problem include the equations for calculating the operation time of the relays in both forward and reverse directions, the limitation of the coordination time interval, the limitation of the setting parameters of the proposed relays, the restriction of the size of the reactance that limits the fault current, and the limitation of the standing time of distributed generation per small signal fault. The operation time of the relays depends on the short circuit current passing through them, so it is necessary to calculate the network variables before the fault occurs. For this purpose, optimal daily power distribution should be used in the micro-grid, because micro-grids consist of storage and renewable resources. The proposed plan includes the uncertainties of consumption and generation capacity of renewable resources. Then, to achieve a reliable answer with a low standard deviation, the refrigeration optimization algorithm is used to solve the proposed problem. Finally, the proposed design is implemented on the standard test system in the MATLAB software, and then the capabilities of the proposed design are examined.
在提出的保护协调方案中,将整个继电器在主保护和后备保护模式下的所有可能故障位置的运行时间的损耗作为目标函数。这个问题的限制包括正向和反向继电器运行时间的计算公式、协调时间间隔的限制、提出的继电器的设置参数的限制、限制故障电流的电抗大小的限制以及限制小信号故障的分布式发电持续时间的限制。继电器的运行时间取决于流过它们的短路电流,因此需要在故障发生前计算网络变量。为此,微电网中应采用最优日功率分配,因为微电网由储能和可再生能源组成。所提出的计划包括可再生资源的消费和发电能力的不确定性。然后,为了用低标准差得到可靠的答案,使用制冷优化算法来解决所提出的问题。最后,在所提出的设计在 MATLAB 软件中的标准测试系统上进行实施,然后检查所提出的设计的能力。