论文标题
通过基于逆变器的资源来稳定瞬态干扰
Stabilizing Transient Disturbances With Utility-Scale Inverter-Based Resources
论文作者
论文摘要
本文提出了一种轨迹跟踪控制策略,该策略调节基于地理分布的基于逆变器的资源注入的主动功率以支持瞬态稳定性。每个资源都是独立控制的,其响应将局部总线电压倾斜到轨迹轨迹的轨迹。从广域测量值中实时估计惯性角。主要目标是稳定瞬态干扰,并增加可以在关键传输路径上安全传递的功率,而不会损失同步性。在这里,我们将执行器设想为公用事业规模的储能系统;但是,可以为部分毛尾部的光伏生成和/或4型风力涡轮机发电机开发等效示例。该策略源于同步机的运动方程式的时变线性化。控制动作在特殊的参考框架中产生同步扭矩,该扭矩解释了惯性中心的运动。这将系统驱动系统朝向所需的轨迹并促进转子角度稳定性。为了进行测试,我们采用了北美西部互连的减少阶动力模型。结果表明,这种方法可提高系统的可靠性,并可以增加对稳定性有限传输走廊的容量利用。
This paper presents a trajectory tracking control strategy that modulates the active power injected by geographically distributed inverter-based resources to support transient stability. Each resource is independently controlled, and its response drives the local bus voltage angle toward a trajectory that tracks the angle of the center of inertia. The center-of-inertia angle is estimated in real time from wide-area measurements. The main objectives are to stabilize transient disturbances and increase the amount of power that can be safely transferred over key transmission paths without loss of synchronism. Here we envision the actuators as utility-scale energy storage systems; however, equivalent examples could be developed for partially-curtailed photovoltaic generation and/or Type 4 wind turbine generators. The strategy stems from a time-varying linearization of the equations of motion for a synchronous machine. The control action produces synchronizing torque in a special reference frame that accounts for the motion of the center of inertia. This drives the system states toward the desired trajectory and promotes rotor angle stability. For testing we employ a reduced-order dynamic model of the North American Western Interconnection. The results show that this approach improves system reliability and can increase capacity utilization on stability-limited transmission corridors.