Zahloul Hussin, Khaliq Arjmand, Hamzehbahmani Hamed, Veremieiev Sergii, Salous Sana
Department of Engineering, Durham University, DH1 3LE, Durham, United Kingdom.
Electrical Engineering Department, High Institute of Science and Technology, Tiji, Libya.
Heliyon. 2024 Feb 23;10(5):e26935. doi: 10.1016/j.heliyon.2024.e26935. eCollection 2024 Mar 15.
Short circuit faults are a prevalent issue in power systems, causing disruptions to the grid's normal operation. Dynamic behaviours of the conventional power systems during short circuit faults have been extensively studied and understood. The bulk of ongoing research and development are focusing on the dynamic performance of grid-connected renewable energy systems under these fault conditions, due to changes in the grid code and a decrease in system inertia. The development of effective control strategies to enhance the system's reliability during fault conditions is of paramount importance. In this paper, a two-stages grid-connected photovoltaic system (GCPV) having a rated power of 2 MW was created in the MATLAB/Simulink environment. The dynamic behaviour of the presented system was evaluated in two scenarios: steady state conditions and short circuit faults. A line-to-ground short circuit fault was created at the grid side, and its effect on the PV system's operation was observed. An advanced control system was designed to maintain stability during fault conditions. The results demonstrated the efficiency of the designated control system in minimizing the effects of short circuit faults on the GCPV system's function, and restoring the system promptly after the fault was cleared. Furthermore, considering modifications in grid regulations, the low voltage ride through (LVRT) capability of the designed system was analysed and validated according to the UK standards. The Total Harmonic Distortion (THD) level at the common coupling point was also analysed for voltage and current, remaining below the acceptable level of 5% as specified in the IEEE Std. 519.
短路故障是电力系统中普遍存在的问题,会导致电网正常运行中断。传统电力系统在短路故障期间的动态行为已得到广泛研究和理解。由于电网规范的变化和系统惯性的降低,目前大部分研发工作都集中在这些故障条件下并网可再生能源系统的动态性能上。开发有效的控制策略以提高系统在故障条件下的可靠性至关重要。本文在MATLAB/Simulink环境中创建了一个额定功率为2兆瓦的两级并网光伏系统(GCPV)。在稳态条件和短路故障两种情况下评估了所提出系统的动态行为。在电网侧设置了线对地短路故障,并观察其对光伏系统运行的影响。设计了一种先进的控制系统以在故障条件下保持稳定性。结果表明,指定的控制系统在最小化短路故障对GCPV系统功能的影响以及在故障清除后迅速恢复系统方面是有效的。此外,考虑到电网规定的修改,根据英国标准对设计系统的低电压穿越(LVRT)能力进行了分析和验证。还分析了公共连接点处电压和电流的总谐波失真(THD)水平,其保持在IEEE Std. 519规定的5%可接受水平以下。