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Thermal Analysis of Multilevel Grid-side Converters for 10-MW Wind turbines under Low-Voltage Ride Through

机译:低压穿越式10 mW风力发电机组多电网侧变流器的热分析

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摘要

As the power level of a single wind turbine is continuously pushed up even to 7 MW, the wind power generation systems are required to be more reliable and able to withstand extreme grid disturbances. Moreover, it is becoming a need that the wind power generation system should be more active in the power network and able to contribute to the grid recovery by injecting reactive current during grid faults. Consequently, the full-scale power converter solutions are becoming more and more popular to fulfill the growing challenges in the wind power application. Nevertheless, the loading of the power devices in full-scale power converters, particularly during grid faults, may compromise the reliability performance and further increase the cost of the system. In this paper, three promising grid-side multilevel converter topologies for the next-generation 10-MW wind turbines are proposed and basically designed as case study. The operation status, as well as the reliability-related performances, is investigated aimed at various low-voltage ride through (LVRT) conditions. It is found that all of the proposed converter topologies will suffer from higher junction temperature in some heavily loaded power devices (particularly the diodes) under LVRT operation. Moreover, the three-level and five-level H-bridge topologies show more potential to reduce the inequality and level of device stress than the well-known three-level neutral point clamped topology.
机译:随着单个风力涡轮机的功率水平不断提高甚至达到7兆瓦,要求风力发电系统更加可靠并能够承受极端的电网干扰。此外,越来越需要风力发电系统在电网中更加活跃,并且能够通过在电网故障期间注入无功电流来对电网恢复做出贡献。因此,全尺寸功率转换器解决方案越来越受欢迎,以应对风电应用中日益增长的挑战。然而,在全尺寸功率转换器中功率设备的负载,特别是在电网故障期间,可能会损害可靠性性能并进一步增加系统成本。本文针对下一代10兆瓦风力涡轮机,提出了三种有希望的并网侧多电平换流器拓扑,并进行了案例设计。针对各种低电压穿越(LVRT)条件,研究了运行状态以及与可靠性相关的性能。发现在LVRT操作下,某些负载较大的功率器件(尤其是二极管)中,所有拟议的转换器拓扑都将遭受较高的结温。而且,与众所周知的三级中性点钳位拓扑相比,三级和五级H桥拓扑显示出更大的潜力来减少不平等和降低器件应力水平。

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