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An Advanced Load Shedding Algorithm to Enhance Intentional-Islanding Dynamics

机译:增强有意孤岛动力学的高级减载算法

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The traditional precautions after islanding process is to disconnect distributed generation (DG) to ensure safe operation. However, disconnection of DGs reduces the island reliability and security. Many of the DG owners prefer to control the islanding process and put certain constraints and regulations for the new isolated system, which is achieved through intentional islanding. This study presents an advanced load shedding algorithm, which enhances the intentional islanding dynamics. The load shedding algorithm can improve the total distribution system reliability and security. Distribution systems are equipped with monitoring and control systems that help in detecting islanding states and create intentional island configurations. The dynamic behaviors after intentional islanding for the case studies are extensively investigated. The system has been cheeked under extreme conditions and the results prove its robustness. The local supervisory control system can modify the generator frequency controller and voltage controller to guarantee high power quality in the new isolated system. Small signal stability study is introduced for each island to check the stability for the new islands. The proposed load shedding algorithm is tested for the case studies to prove its capability. The system is modeled and simulated via NEPLAN software.
机译:孤岛化之后的传统预防措施是断开分布式发电(DG),以确保安全运行。但是,DG的断开会降低孤岛的可靠性和安全性。许多DG的所有者更喜欢控制孤岛的过程,并对新的隔离系统设置某些约束和规定,这是通过有意孤岛实现的。这项研究提出了一种先进的减载算法,可以增强有意的孤岛动力学。减载算法可以提高整个配电系统的可靠性和安全性。配电系统配有监视和控制系统,可帮助检测孤岛状态并创建有意的孤岛配置。案例研究中有意孤岛后的动态行为已得到广泛研究。该系统已在极端条件下使用过,其结果证明了其耐用性。本地监督控制系统可以修改发电机频率控制器和电压控制器,以确保新隔离系统中的高电能质量。为每个岛引入小信号稳定性研究,以检查新岛的稳定性。针对案例研究对提出的减载算法进行了测试,以证明其功能。该系统通过NEPLAN软件进行建模和仿真。

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