面向智能电网的可扩展电压控制:一种次模块优化方法

Zhipeng Liu, Andrew Clark, Phillip Lee, L. Bushnell, D. Kirschen, R. Poovendran
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引用次数: 14

摘要

当电力系统无法满足一条或多条母线的无功功率需求时,就会发生电压不稳定。电压不稳定事件已经引起了几次主要的停电,并且由于不断增加的能源需求,预计将变得更加频繁。未来的智能电网可以通过快速检测可能的电压不稳定并实施纠正措施来帮助确保电压稳定。只有及时、可扩展地选择这些纠正措施,才能有效地恢复稳定。然而,当前选择控制动作的技术依赖于穷举搜索,因此可能选择低效的控制策略。在本文中,我们提出了一种子模块优化方法来设计控制策略,以防止一个或多个母线的电压不稳定。我们的关键见解是,与期望电压的偏差是所采用的无功功率注入集的超模块化函数,从而导致具有可证明的最优性保证的计算效率的控制算法。此外,我们还表明,当电力系统在大负荷条件下运行时,我们的方法的最优界可以从1/3提高到1/2。我们通过对IEEE 30总线测试用例的广泛模拟研究来演示我们的框架。
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Towards Scalable Voltage Control in Smart Grid: A Submodular Optimization Approach
Voltage instability occurs when a power system is unable to meet reactive power demand at one or more buses. Voltage instability events have caused several major out- ages and promise to become more frequent due to in- creasing energy demand. The future smart grid may help to ensure voltage stability by enabling rapid detection of possible voltage instability and implementation of corrective action. These corrective actions will only be effective in restoring stability if they are chosen in a timely, scalable manner. Current techniques for select- ing control actions, however, rely on exhaustive search, and hence may choose an inefficient control strategy. In this paper, we propose a submodular optimization approach to designing a control strategy to prevent volt- age instability at one or more buses. Our key insight is that the deviation from the desired voltage is a super- modular function of the set of reactive power injections that are employed, leading to computationally efficient control algorithms with provable optimality guarantees. Furthermore, we show that the optimality bound of our approach can be improved from 1/3 to 1/2 when the power system operates under heavy loading conditions. We demonstrate our framework through extensive simulation study on the IEEE 30 bus test case.
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ICCPS '21: ACM/IEEE 12th International Conference on Cyber-Physical Systems, Nashville, Tennessee, USA, May 19-21, 2021 Demo Abstract: SURE: An Experimentation and Evaluation Testbed for CPS Security and Resilience Poster Abstract: Thermal Side-Channel Forensics in Additive Manufacturing Systems Exploiting Wireless Channel Randomness to Generate Keys for Automotive Cyber-Physical System Security WiP Abstract: Platform for Designing and Managing Resilient and Extensible CPS
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