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Optimal management of reactive power sources in far-offshore wind power plants

机译:远洋风力发电厂无功电源的优化管理

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This paper introduces a new approach for the optimal management of reactive power, with emphasis on offshore wind power plants. The approach follows a predictive optimization scheme (i.e. day-ahead, intraday application). Predictive optimization is based on the principle of minimizing the real power losses, as well the number of On-load Tap Changer (OLTC) operations for daily time horizon (discretized in 24 hours). The mixed-integer nature of the problem and the restricted computing budget is tackled by using an emerging metaheuristic algorithm called Mean-Variance Mapping Optimization (MVMO). The evolutionary mechanism of MVMO is enhanced by introducing a new mapping function, which improves its global search capability. The effectiveness of MVMO to find solutions that ensure minimum losses, minimum impact on OLTC lifetime, and well as optimal grid code compliance is demonstrated by investigating the case of a real world far-offshore wind power plant with HVDC connection.
机译:本文介绍了一种优化无功功率管理的新方法,重点是海上风力发电厂。该方法遵循预测性优化方案(即提前一天,日内应用)。预测性优化基于以下原则:将有功功率损耗以及每日时间范围内的有载分接开关(OLTC)操作次数降至最低(24小时不分配)。通过使用一种称为均值方差映射优化(MVMO)的新兴元启发式算法,可以解决问题的混合整数性质和有限的计算预算。 MVMO的进化机制通过引入新的映射功能得到增强,从而提高了其全局搜索功能。通过调查真实世界中具有HVDC连接的远距离风力发电厂的情况,证明了MVMO寻找确保最小损失,对OLTC寿命的影响最小以及最佳电网规范合规性的有效性。

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