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Optimal Allocation of Synchronous Condensers in Wind Dominated Power Grids

机译:风电网中同步冷凝器的最佳分配

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摘要

System strength (also known as short-circuit performance) indicates the capability of a power system to recover a fault. Renewable energy integration in power grids causes replacement and retirement of synchronous generators from generation fleet, which tends to reduce system strength. As such, a pre-defined number of synchronous generators are intentionally kept online to ensure adequate system strength in some power systems (e.g. South Australia). It results in the curtailment of wind power which eventually introduces financial concerns. To mitigate this issue, synchronous condensers can be a worthwhile choice. These devices contribute to fault level and provide voltage support to enhance system strength. Since synchronous condensers are costly, the best strategy for their allocation is a major query to investigate. To address this concern, this paper proposes an optimisation algorithm to allocate synchronous condensers to enhance system strength in a wind dominated power system by taking into account the long-term economic profitability of synchronous condensers installation. System strength calculations are based on Time Domain Dynamic Simulations with dynamic models which include current saturation limit of power electronics converters of wind farms. The proposed optimisation algorithm provides the most technically as well as economically viable solution to enhance system strength by utilising synchronous condensers.
机译:系统强度(也称为短路性能)表示电力系统恢复故障的能力。电网的可再生能源集成导致同步发电机的替代和退出生成舰队,这往往会降低系统强度。因此,预定义数的同步发电机有意地保持在线,以确保某些电力系统(例如南澳大利亚)中的充分系统强度。它导致风力发电,最终引入了财务问题。为了缓解这个问题,同步冷凝器可以是一个有价值的选择。这些设备有助于故障水平并提供电压支持以提高系统强度。由于同步冷凝器昂贵,因此他们分配的最佳策略是调查的主要查询。为了解决这一问题,本文提出了一种优化算法来分配同步冷凝器,通过考虑同步冷凝器安装的长期经济盈利能力来增强风电力系统中的系统强度。系统强度计算基于具有动态模型的时域动态模拟,包括风电场电力电子转换器的当前饱和极限。所提出的优化算法在技术上以及经济上可行的解决方案,通过利用同步冷凝器来提高系统强度。

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