Department of Electric Engineering, Polytechnic University of Catalonia (EEBE-UPC), 08019 Barcelona, Spain.
Department of Energy Technology, Aalborg University, 9200 Aalborg, Denmark.
Sensors (Basel). 2023 Jan 14;23(2):980. doi: 10.3390/s23020980.
The rapid growth of the distributed generators (DGs) integration into the distribution systems (DSs) creates new technical issues; conventional relay settings need to be updated depending on the network topology and operational mode as fault protection a major challenge. This emphasizes the need for new fault protection methods to ensure secure protection and prevent undesirable tripping. Total harmonic distortion (THD) is an important indicator for assessing the quality of the grid. Here, a new protection system based on the THD of the grid voltages is proposed to address fault events in the electrical distribution network. The proposed protection system combines the THD with the estimates of the amplitude voltages and the zero-sequence component for defining an algorithm based on a finite state machine (FSM) for the detection, identification, and isolation of faults in the grid. The algorithm employs communication lines between all the protective devices (PDs) of the system to transmit tripping signals, allowing PDs to be coordinated. A second order generalized integrator (SOGI) and multiple SOGI (MSOGI) are used to obtain the THDs, estimated amplitude voltages, and zero-sequence component, which allows for fast detection with a low computational burden. The protection algorithm performance is evaluated through simulations in MATLAB/Simulink and a comparative study is developed between the proposed protection method and a differential relay (DR) protection system. The proposed method shows its capability to detect and isolate faults during different fault types with different fault resistances in different locations in the proposed network. In all the tested scenarios, the detection time of the faults has been between 7-10 ms. Moreover, this method gave the best solution as it has a higher accuracy and faster response than the conventional DR protection system.
分布式发电机(DG)的快速增长集成到配电系统(DS)中会产生新的技术问题;需要根据网络拓扑和运行模式更新传统的继电器设置,故障保护是一个主要挑战。这强调了需要新的故障保护方法来确保安全保护并防止不必要的跳闸。总谐波失真(THD)是评估电网质量的重要指标。在这里,提出了一种基于电网电压 THD 的新保护系统,以解决配电网络中的故障事件。所提出的保护系统将 THD 与电压幅值估计和零序分量结合起来,为基于有限状态机(FSM)的算法定义一个算法,用于检测、识别和隔离电网中的故障。该算法使用系统中所有保护装置(PD)之间的通信线路传输跳闸信号,从而实现 PD 的协调。二阶广义积分器(SOGI)和多个 SOGI(MSOGI)用于获取 THD、估计的幅值电压和零序分量,这允许快速检测,计算负担低。通过在 MATLAB/Simulink 中进行仿真来评估保护算法的性能,并对所提出的保护方法和差动继电器(DR)保护系统进行了比较研究。所提出的方法在不同位置、不同故障电阻的不同故障类型下表现出了检测和隔离故障的能力。在所有测试的场景中,故障的检测时间都在 7-10ms 之间。此外,该方法提供了最佳的解决方案,因为它比传统的 DR 保护系统具有更高的准确性和更快的响应速度。