论文标题
基于逆变器的最佳资源放置在低惯性电源系统中
Optimal Inverter-Based Resources Placement in Low-Inertia Power Systems
论文作者
论文摘要
将基于逆变器的资源(IBR)集成到电网上的增加将导致连接同步发电机的数量相应减少,从而导致可用的旋转惯性系统范围内的下降。当网格中存在干扰和故障时,这可能会导致明显的频率偏差。可以通过快速注入或从网格中删除功率来参与频率响应服务的快速作用IBR来补偿可用旋转惯性的下降。当前,网格中仍然相对少量的IBR。因此,IBR在系统中的放置以及逆变器配置类型和控制器将对网格的频率响应产生重大影响。在这项工作中,我们提出了一种最佳的放置算法,该算法最大程度地利用IBR在提供频率响应服务中的好处。也就是说,我们最大程度地减少了整个系统频率偏差,同时使用IBR的电力量最小。所提出的算法使用电阻距离将IBR放置在网络中其余节点中心的节点上,从而最大程度地减少了功率流的距离。提出的贪婪算法实现了几乎最佳的性能,并依赖于电阻距离的超模样。我们通过将其性能与详尽的搜索算法进行比较,在三个IEEE测试系统上验证了位置算法的性能。我们进一步评估了在IEEE测试系统上放置的IBR的性能,以确定它们对频率稳定性的影响。 IBR以网格形成模式配置,并配备了模型预测控制(MPC)的逆变器功率控制。
An increase in the integration of Inverter Based Resources (IBRs) to the electric grid, will lead to a corresponding decrease in the amount of connected synchronous generators, resulting in a decline in the available rotational inertia system-wide. This can lead to pronounced frequency deviations when there are disturbances and faults in the grid. This decline in available rotational inertia can be compensated for by fast acting IBRs participating in frequency response services, by rapidly injecting into or removing power from the grid. Currently, there are still relative small number of sizable IBRs in the grid. Therefore, the placement of the IBRs in the system, as well as the inverter configuration type and controller, will have a material impact on the frequency response of the grid. In this work, we present an optimal placement algorithm that maximizes the benefits of utilizing IBRs in providing frequency response services. That is, we minimize the overall system frequency deviation while using a minimal amount of electric power injection from the IBRs. The proposed algorithm uses the resistance distance to place the IBRs at nodes that are central to the rest of the nodes in the network thus minimizing the distance of power flow. The proposed greedy algorithm achieves a near optimal performance and relies on the supermodularity of the resistance distances. We validate the performance of the placement algorithm on three IEEE test systems of varying sizes, by comparing its performance to an exhaustive search algorithm. We further evaluate the performance of the placed IBRs on an IEEE test system, to determine their impact on frequency stability. The IBRs are configured in a grid-forming mode and equipped with a model predictive control (MPC)-based inverter power control.