Optimal Control of Distributed Generation for Improved Security Constraint Management

J. Gunda, G. Harrison, S. Djokic
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Abstract

The management of static security constraints (bus voltages and branch thermal limits) is one of the continuous tasks performed by operators. These constraints at any operating point can be divided into noncritical and critical constraints. To be secure, the system must fulfil both types of security constraints at all the time. While primary active and reactive power controls can manage noncritical constraints, emergency controls or remedial actions must be computed using optimal power flow (OPF) analysis to alleviate critical constraint violations. If the post contingency network involves a violation of critical constraints (which are not known a priori), conventional OPF algorithms may fail to converge and compute required control action, as the corresponding optimization problem becomes mathematically infeasible. Hence, the identification of critical constraint violations is necessary, as their location in the network decides the installation (during planning) and activation (during operation) of emergency controls. In this context, this paper first identifies the location of critical constraint violations using a metaheuristic approach, and then proposes a method to optimally place or control distributed generation to alleviate network thermal and voltage congestions during emergency situations.
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基于改进安全约束管理的分布式发电最优控制
静态安全约束(总线电压和分支热限制)的管理是操作员执行的连续任务之一。在任何工作点上的这些约束都可以分为非关键约束和关键约束。为了确保安全,系统必须始终满足这两种类型的安全约束。虽然主要的有功和无功功率控制可以管理非关键约束,但必须使用最优潮流(OPF)分析来计算紧急控制或补救措施,以减轻对关键约束的违反。如果后事件网络涉及违反关键约束(不知道先验),传统的OPF算法可能无法收敛和计算所需的控制动作,因为相应的优化问题在数学上是不可实现的。因此,关键约束违规的识别是必要的,因为它们在网络中的位置决定了紧急控制的安装(在规划期间)和激活(在运行期间)。在此背景下,本文首先使用元启发式方法确定关键约束违规的位置,然后提出一种分布式发电的最佳放置或控制方法,以缓解紧急情况下的网络热拥塞和电压拥塞。
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