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A Generalized PSS Architecture for Balancing Transient an Small-Signal Response

机译:用于平衡瞬态的广义PSS架构进行小信号响应

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For decades, power system stabilizers paired with high initial response automatic voltage regulators have served as an effective means of meeting sometimes conflicting system stability requirements. Driven primarily by increases in power electronically-coupled generation and load, the dynamics of large-scale power systems are rapidly changing. Electric grids are losing inertia and traditional sources of voltage support and oscillation damping. The system load is becoming stiffer with respect to changes in voltage. In parallel, advancements in wide-area measurement technology have made it possible to implement control strategies that act on information transmitted over long distances in nearly real time. In this paper, we present a power system stabilizer architecture that can be viewed as a generalization of the standard $Delta omega -$ type stabilizer. The control strategy utilizes a real-time estimate of the center-of-inertia speed derived from wide-area measurements. This approach creates a flexible set of trade-offs between transient and small-signal response, making synchronous generators better able to adapt to changes in system dynamics. The phenomena of interest are examined using a two-area test case and a reduced-order model of the North American Western Interconnection. To validate the key findings under realistic conditions, we employ a state-of-the-art co-simulation platform to combine high-fidelity power system and communication network models. The benefits of the proposed control strategy are retained even under pessimistic assumptions of communication network performance.
机译:几十年来,与高初始响应自动电压调节器配对的电力系统稳定器已作为有时相互冲突的系统稳定要求的有效手段。主要通过电力电子耦合产生和负载的增加来驱动,大规模电力系统的动态迅速变化。电网正在失去惯性和传统的电压支撑源和振荡阻尼。系统负载相对于电压的变化变得更加致电。同时,广域测量技术的进步使得可以实现对几乎实时在长距离传输的信息的控制策略。在本文中,我们介绍了一种电力系统稳定器架构,可以被视为标准$ delta Omega - $型稳定器的概括。控制策略利用了从广域测量的惯性中心速度的实时估计。这种方法在瞬态和小信号响应之间创建了一组灵活的权衡,使同步发电机能够更好地适应系统动态的变化。使用两域测试案例和北美西部互连的阶数模型进行了兴趣现象。为了验证在现实条件下的关键调查结果,我们采用了最先进的共模平台来组合高保真电力系统和通信网络模型。即使在通信网络性能的悲观假设下,拟议控制策略的好处也被保留。

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