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Maintenance Strategy Optimization for Complex Power Systems Susceptible to Maintenance Delays and Operational Dynamics

机译:易受维护延迟和运行动力学影响的复杂电力系统的维护策略优化

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摘要

Maintenance is a necessity for most multicomponent systems, but its benefits are often accompanied by considerable costs. However, with the appropriate number of maintenance teams and a sufficiently tuned maintenance strategy, optimal system performance is attainable. Given system complexities and operational uncertainties, identifying the optimal maintenance strategy is a challenge. A robust computational framework, therefore, is proposed to alleviate these difficulties. The framework is particularly suited to systems with uncertainties in the use of spares during maintenance interventions, and where these spares are characterized by delayed availability. It is provided with a series of generally applicable multistate models that adequately define component behavior under various maintenance strategies. System operation is reconstructed from these models using an efficient hybrid load-flow and event-driven Monte Carlo simulation. The simulation's novelty stems from its ability to intuitively implement complex strategies involving multiple contrasting maintenance regimes. This framework is used to identify the optimal maintenance strategies for a hydroelectric power plant and the IEEE-24 RTS. In each case, the sensitivity of the optimal solution to cost level variations is investigated via a procedure requiring a single reliability evaluation, thereby reducing the computational costs significantly. The results show the usefulness of the framework as a rational decision-support tool in the maintenance of multicomponent multistate systems.
机译:对于大多数多组件系统而言,维护是必需的,但其好处往往伴随着可观的成本。但是,通过适当数量的维护团队和充分调整的维护策略,可以获得最佳的系统性能。考虑到系统的复杂性和操作的不确定性,确定最佳的维护策略是一个挑战。因此,提出了鲁棒的计算框架来减轻这些困难。该框架特别适用于在维护干预期间备用件的使用不确定的系统,并且这些备用件的特点是延迟可用性。它提供了一系列普遍适用的多状态模型,这些模型充分定义了各种维护策略下的组件行为。使用高效的混合潮流和事件驱动的蒙特卡洛模拟,从这些模型重构系统的运行。该模拟的新颖性源于其能够直观地实施涉及多个对比维护方案的复杂策略的能力。该框架用于确定水力发电厂和IEEE-24 RTS的最佳维护策略。在每种情况下,通过需要单个可靠性评估的过程来研究最优解决方案对成本水平变化的敏感性,从而显着降低计算成本。结果表明,该框架在维护多组件多状态系统中作为合理的决策支持工具很有用。

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