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Enhanced power device configuration and operation of a grid-connected active-neutral-point-clamped inverter for wind energy conversion systems

机译:用于风能转换系统的并网有源中性点钳位逆变器的增强功率设备配置和操作

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The power ratings of wind energy conversion systems (WECS) are increasing considerably due to high demand on wind power. Thus, multilevel power converters are becoming an interesting solution in the largest WECS, especially the three-level neutral-point-clamped (3L-NPC) thanks to its simple implementation and proper performance compared to other topologies. However, the main drawback of the 3L-NPC is that the power losses are unevenly distributed among the switching devices, limiting its output power capability. Current literature focuses on the three-level active neutral-point-clamped (3L-ANPC) as an evolution of the 3L-NPC, enabling a more even power loss distribution. However, in the 3L-ANPC there are still some devices suffering from both large switching and conduction power losses. Thus, this paper proposes new design guidelines for a 3L-ANPC inverter to force that each device mainly withstands either switching or conduction power losses. Then, the most suitable device is selected for each position, enabling a significant improvement in power loss distribution, thermal performance, converter efficiency and output power capability. A 2 MW low-voltage WECS is simulated with an electro-thermal model developed in PLECS, reaching a reduction of around 25% in power losses, a reduction of 50% in maximum junction temperature increase above ambient temperature, a reduction of 75% in maximum junction temperature variation, and an increase of around 85% in converter output power rating, compared to the conventional 3L-NPC and the 3L-ANPC.
机译:由于对风能的高需求,风能转换系统(WECS)的额定功率正在显着提高。因此,由于其简单的实现方式和与其他拓扑相比的适当性能,多电平功率转换器已成为最大的WECS(尤其是三电平中性点钳位(3L-NPC))中一个有趣的解决方案。但是,3L-NPC的主要缺点是功率损耗在开关设备之间分布不均,限制了其输出功率能力。当前的文献集中在三级有源中性点钳位(3L-ANPC),这是3L-NPC的发展,可以实现更均匀的功率损耗分配。但是,在3L-ANPC中,仍有一些设备同时遭受较大的开关损耗和传导功率损耗。因此,本文为3L-ANPC逆变器提出了新的设计指南,以强制每个设备主要承受开关或传导功率损耗。然后,为每个位置选择最合适的设备,从而显着改善功率损耗分布,热性能,转换器效率和输出功率能力。利用PLECS中开发的电热模型对2 MW低压WECS进行了仿真,功率损耗降低了约25%,最高结温升高了50%,高于环境温度时降低了75%。与传统的3L-NPC和3L-ANPC相比,最大结温变化大,转换器输出额定功率增加了约85%。

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