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A latencies tolerant model predictive control approach to damp Inter-area oscillations in delayed power systems

机译:延迟电力系统中抑制区域间振荡的等待时间容忍模型预测控制方法

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Automatic voltage regulators and power system stabilizers have been employed successfully to deal with fast dynamics associated to local oscillations phenomena. Whereas, inter-area oscillations damping in large power systems requires remote feedback controllers fed by Wide Area Monitoring Systems (WAMS). Although these improvements in the inter-area oscillations behavior have been effective, a new challenge emerges: reaching stability with a closed loop control despite latencies due to measurements taken far away from the control centre. The research was motivated by the need for modernization of power systems capable of dealing with control difficulties in centralised WAMS for damping inter-area oscillations in power systems caused by delays in the communication system. Herein, time delay and control problems are addressed separately. The time delay problem is solved by a database based time compensation solution relying on the most updated available state of the system. The control problem is solved by a Model Predictive Control (MPC) with terminal cost and constraint set to handle complexities due to nonlinearities of the power system, the large scale of the problem and the parametric variations. Both solutions work in a coordinated way with local controllers to implement a decentralised coordinated strategy that manages slow global dynamics and fast local dynamics as well. The integrated proposed approach is called Time-Delay-Tolerant Model Predictive Control (TDT-MPC). Coordinated and coherent performance of the two TDT-MPC components (Kalman compensator and MPC) is achieved thanks to unifying power system reference models for both strategies. The approach has been tested on the IEEE 39 system and validated with time domain nonlinear simulations, obtaining post-fault damped oscillations and a good tracking of new power references when tripping tie lines.
机译:自动调压器和电力系统稳定器已成功用于应对与局部振荡现象相关的快速动态。鉴于大型电力系统中的区域间振荡阻尼需要广域监视系统(WAMS)提供的远程反馈控制器。尽管这些对区域间振荡行为的改善是有效的,但还是出现了新的挑战:尽管测量距离控制中心较远,但延迟却使闭环控制达到了稳定性。这项研究的动力是电力系统的现代化,该电力系统应能够解决集中式WAMS中的控制难题,以缓解通信系统中的延迟导致的电力系统区域间振荡。在此,时间延迟和控制问题被分别解决。通过基于数据库的时间补偿解决方案来解决时间延迟问题,该解决方案依赖于系统的最新可用状态。通过模型预测控制(MPC)解决控制问题,该模型具有终端成本和约束条件,可以处理由于电力系统的非线性,问题规模大和参数变化而引起的复杂性。两种解决方案均与本地控制器以协调的方式协同工作,以实施分散的协调策略,该策略还可以管理慢速全局动态和快速本地动态。提出的集成方法称为时延容忍模型预测控制(TDT-MPC)。这两个TDT-MPC组件(卡尔曼补偿器和MPC)的协调一致的性能要归功于两种策略的统一电力系统参考模型。该方法已在IEEE 39系统上进行了测试,并通过时域非线性仿真进行了验证,获得了故障后的阻尼振荡,并在使联络线跳闸时很好地跟踪了新的功率基准。

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