Transient Stability Analysis of an Integrated Photovoltaic Systems in a Power System

IF 0.8 Q3 ENGINEERING, MULTIDISCIPLINARY
Sibonakaliso Mzebetshana, Rudiren Sarma
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Abstract

Integration of PV systems into the grid is growing rapidly around the world, and PV penetration plays a huge role in minimizing the effect of greenhouse gases in the atmosphere and also contributes to minimizing the impact of load shedding. However, PV systems contribute to grid integration issues such as transients, voltage, and frequency instabilities and reductions in the generator's inertia, respectively; therefore, it is essential to investigate the effect of the PV system on the grid before integrating it. This paper utilized a modified IEEE 9 bus system to investigate the impact of large-scale PV on the power system, and PSCAD software has been used for this study. Four scenarios with different PV penetration levels were considered in this paper. Moreover, for each scenario, the transient stability was assessed based on five parameters, namely: active power, reactive power, rotor angle, rotor speed, and the terminal voltage. Scenario 1 examines the PV systems integrated into a single bus and finds that the optimal PV penetration is 60% of the total power generation. Scenario 2 investigates the effect of integrating PV systems using the optimal PV penetration of 60% distributed into two buses, which was found to be the best for transient stability improvement after a fault condition. Scenario 3 investigates the impact of the power system stabilizer (PSS), using the optimal PV penetration of 60%, and the results reveal that system stability improves when a fault occurs on the bus where the PV system is also connected. Scenario 4 investigates the effectiveness of the fault clearing time on the response of the system with an integrated PV system, using the optimal PV penetration of 60%. The results revealed that a PV system only improves transient stability if the fault-clearing time is below 0.5 seconds; otherwise, the system loses stability. Overall, the study demonstrates that the system’s stability improves up to 60% of the PV penetration level of total generation power.
电力系统中集成光伏系统的暂态稳定性分析
光伏系统并入电网在全球范围内发展迅速,光伏系统的渗透在最大限度地减少温室气体对大气的影响方面发挥着巨大作用,同时也有助于最大限度地减少甩负荷的影响。然而,光伏系统会导致并网问题,如瞬态、电压和频率不稳定性以及发电机惯性降低等;因此,在并网之前,有必要研究光伏系统对电网的影响。本文利用修改后的 IEEE 9 母线系统来研究大规模光伏发电对电力系统的影响,并使用 PSCAD 软件进行研究。本文考虑了四种不同光伏渗透水平的情况。此外,对于每种情景,都根据五个参数评估了暂态稳定性,即有功功率、无功功率、转子角度、转子速度和端电压。方案 1 研究了集成到单个母线上的光伏系统,发现最佳光伏渗透率为总发电量的 60%。方案 2 研究了将光伏系统集成到两个母线的效果,发现最佳光伏渗透率为 60%,这对故障后的瞬态稳定性改善效果最佳。方案 3 采用 60% 的最佳光伏渗透率来研究电力系统稳定器 (PSS) 的影响,结果表明,当光伏系统同时连接的母线发生故障时,系统稳定性会得到改善。方案 4 采用 60% 的最佳光伏渗透率,研究了故障清除时间对集成光伏系统响应的影响。结果显示,只有当故障清除时间低于 0.5 秒时,光伏系统才能提高暂态稳定性;否则,系统将失去稳定性。总之,研究表明,在光伏发电渗透率达到总发电量的 60% 时,系统的稳定性会得到改善。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
1.80
自引率
14.30%
发文量
62
期刊介绍: "International Journal of Engineering Research in Africa" is a peer-reviewed journal which is devoted to the publication of original scientific articles on research and development of engineering systems carried out in Africa and worldwide. We publish stand-alone papers by individual authors. The articles should be related to theoretical research or be based on practical study. Articles which are not from Africa should have the potential of contributing to its progress and development.
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