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Cost and reliability optimization of modular multilevel converter with hybrid submodule for offshore DC wind turbine

机译:具有海上直流风力涡轮机的混合水电站模块化多级转换器的成本与可靠性优化

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摘要

The hybrid modular multilevel converter (HMMC) consisting of half- and full-bridge submodules (SMs), with DC fault ride-through capability, have become a promising candidate for offshore wind energy conversion system, especially all-DC output wind turbines. The topology of HMMC needs to be optimized for lower cost and higher reliability with active redundancy. This paper presents an optimization method for HMMC topology with cost and reliability objectives. The reliability is defined to be not only reliable under normal operation, but also able to ride through DC fault even with faulted SMs, which is different from the former model. Firstly, reliability and cost models with power loss, considering active redundancy configuration, are derived. Then, cost and reliability, with different numbers of original and redundant SMs, are quantified by taking a case study of 10-MW and 10-kV HMMC for offshore DC wind turbines. Finally, a multi-objective optimization approach that regards maximum reliability and minimum cost is proposed, and the optimal solution from Pareto-optimal set is selected according to fuzzy membership function, which determines the optimal topology for HMMC. The results show that reliability can be improve with redundant full-bridge SMs (FBSMs) but weakened with excessive half-bridge SMs (HBSMs). Furthermore, the incremental cost with a redundant FBSM is approximately 3 times that of HBSM. The optimal topology, 10 original SMs per arm (5 HBSMs and 5 FBSMs) with 1 redundant HBSM and 4 FBSMs, is validated by comparing with the results of former reliability model and single-objective optimization.
机译:由半桥柱(SMS)组成的混合模块化多电平转换器(HMMC),具有直流故障功能,已成为海上风能转换系统的有希望的候选者,尤其是All-DC输出风力涡轮机。 HMMC的拓扑需要优化以较低的成本和更高的可靠性,具有主动冗余。本文介绍了具有成本和可靠性目标的HMMC拓扑的优化方法。可靠性定义为在正常操作下不仅可靠,而且还能够通过与前模型不同的断层的SMS来乘坐DC故障。首先,派生考虑主动冗余配置的具有功率损耗的可靠性和成本模型。然后,通过案例研究为近海直流风力涡轮机进行10-MW和10-KV HMMC,通过案例研究来量化具有不同数量的原始和冗余SMS的成本和可靠性。最后,提出了一种关于最大可靠性和最小成本的多目标优化方法,并且根据模糊成员资格函数选择来自Pareto-Optimal集的最佳解决方案,从而确定了HMMC的最佳拓扑。结果表明,通过冗余全桥SMS(FBSMS)可以改善可靠性,但用过多的半桥SMS(HBSM)削弱。此外,冗余FBSM的增量成本约为HBSM的3倍。通过与以前可靠性模型和单目标优化的结果进行比较,通过比较,通过比较验证了具有1个冗余HBSM和4个FBSM的10个原始SMS(5 HBSM和5 FBSM)。

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