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Event triggered state estimation techniques for power systems with integrated variable energy resources

机译:具有集成可变能源的电力系统的事件触发状态估计技术

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摘要

For many decades, state estimation (SE) has been a critical technology for energy management systems utilized by power system operators.,Over time, it has become a mature technology that provides an accurate representation of system state under fairly stable and well understood system operation. The integration of variable energy resources (VERs) such as wind and solar generation, however, introduces new fast frequency dynamics and uncertainties into the system. Furthermore, such renewable energy is often integrated into the distribution system thus requiring real-time monitoring all the way to the periphery of the power grid topology and not just the (central) transmission system. The conventional solution is two fold: solve the SE problem (1) at a faster rate in accordance with the newly added VER dynamics and (2) for the entire power grid topology including the transmission and distribution systems. Such an approach results in exponentially growing problem sets which need to be solver at faster rates. This work seeks to address these two simultaneous requirements and builds upon two recent SE methods which incorporate event-triggering such that the state estimator is only called in the case of considerable novelty in the evolution of the system state. The first method incorporates only event-triggering while the second adds the concept of tracking. Both SE methods are demonstrated on the standard IEEE 14-bus system and the results are observed for a specific bus for two difference scenarios: (1) a spike in the wind power injection and (2) ramp events with higher variability. Relative to traditional state estimation, the numerical case studies showed that the proposed methods can result in computational time reductions of 90%. These results were supported by a theoretical discussion of the computational complexity of three SE techniques. The work concludes that the proposed SE techniques demonstrate practical improvements to the computational complexity of classical state estimation. In such a way, state estimation can continue to support the necessary control actions to mitigate the imbalances resulting from the uncertainties in renewables. (C) 2014 ISA. Published by Elsevier Ltd. All rights reserved.
机译:数十年来,状态估计(SE)一直是电力系统运营商使用的能源管理系统的一项关键技术。随着时间的推移,状态估计(SE)已成为一项成熟的技术,可以在相当稳定且易于理解的系统操作下准确显示系统状态。然而,风能和太阳能等可变能源(VERs)的集成为系统带来了新的快速频率动态和不确定性。此外,这种可再生能源通常被集成到配电系统中,因此需要实时监控直至电网拓扑的外围,而不仅仅是(中央)传输系统。常规解决方案有两个方面:(1)根据新添加的VER动力学更快地解决SE问题;(2)解决包括输配电系统在内的整个电网拓扑。这种方法导致问题集呈指数增长,需要以更快的速度解决问题。这项工作旨在解决这两个同时发生的需求,并建立在两种最近的SE方法的基础上,这些方法结合了事件触发功能,因此仅在系统状态演化过程中存在新颖性的情况下才调用状态估计器。第一种方法仅包含事件触发,而第二种则添加了跟踪的概念。两种SE方法均在标准的IEEE 14总线系统上进行了演示,并针对两种不同情况在特定总线上观察到了结果:(1)风电注入出现尖峰,以及(2)具有更高可变性的斜坡事件。相对于传统状态估计,数值案例研究表明,所提出的方法可以使计算时间减少90%。对三种SE技术的计算复杂度的理论讨论为这些结果提供了支持。这项工作得出的结论是,提出的SE技术证明了对经典状态估计的计算复杂度的实际改进。以这种方式,状态估计可以继续支持必要的控制措施,以减轻由于可再生能源的不确定性导致的不平衡。 (C)2014 ISA。由Elsevier Ltd.出版。保留所有权利。

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