实现协调电压控制的高压智能电网

M. Ilić, J. Lang, E. Litvinov, Xiaochuan Luo, J. Tong
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引用次数: 3

摘要

在本文中,我们提出了一个协调电压控制的高压智能电网框架(简称CVC),用于利用电压可控设备来支持增强可靠和高效的运行。在本文的第一部分,我们提出了CVC的基本问题表述。接下来是评估所选择的性能目标的影响,所使用的可控设备的类型以及独立系统运营商(iso)和设备所有者(传输所有者(TOs)和发电所有者(GOs))之间分配责任的协议。在论文的第二部分,我们基于新英格兰(NE)、纽约(NY)和宾夕法尼亚-泽西-马里兰(PJM)电力系统的大规模模拟,描述了拟议的CVC的潜在效益。采用交流扩展最优潮流(AC XOPF)代替常用的直流最优潮流(OPF)对NE和NY电力系统进行了仿真。为了评估电压可控设备对系统满足预期目标的能力的影响,并了解其权衡,使用交流XOPF是必要的。所研究的性能目标是根据发电成本衡量效率,根据预先指定范围的电压偏差衡量可靠性,以及向大负荷区域(特别是纽约市)输送电力。同样,我们报告了在PJM系统中使用自动电压控制(AVC)在传输损耗最小化和关键电压管理方面的最新改进。我们的结论是,拟议的cvc支持的高压智能电网可以为所有三个系统带来显著的好处,并且它将是一个及时的实施。然而,由于CVC架构不是唯一的,因此充分理解其设计对可实现的效率和可靠性增强的影响是很重要的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Toward Coordinated-Voltage-Control-Enabled HV Smart Grids
In this paper we propose a Coordinated Voltage Control-Enabled HV Smart Grid framework (CVC, in short) for utilizing voltage-controllable equipment in support of enhanced reliable and efficient operations. In the first part of the paper we present the basic problem formulation underlying CVC. This is followed by assessing the effects of performance objectives selected, the type of controllable equipment used and the protocols for allocating responsibilities among Independent System Operators (ISOs) and the equipment owners (both Transmission Owners (TOs) and Generation Owners (GOs)). In the second part of the paper we describe potential benefits from the proposed CVC based on the large-scale simulations for the New England (NE), New York (NY) and Pennsylvania-Jersey-Maryland (PJM) power systems. The simulations for NE and NY power systems are carried out using an AC Extended Optimal Power Flow (AC XOPF), instead of commonly used DC OPF. The use of AC XOPF is necessary in order to assess effects of voltage-controllable equipment on the system ability to meet the desired objectives and to understand their tradeoffs. The performance objectives studied are efficiency measured in terms of generation cost, reliability measured in terms of voltage deviations from the pre-specified ranges, and power delivery to large load areas, New York City (NYC) in particular. Similarly, we report up-to-date improvements measured in terms of transmission loss minimization and management of critical voltages from using Automatic Voltage Control (AVC) in the PJM system. We conclude that the proposed CVC-Enabled HV Smart Grid could bring significant benefits to all three systems and that it would be a timely implementation. However, since the CVC architectures are non-unique it is important to fully understand the implications of their design on the achievable efficiency and reliability enhancements.
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