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Field analysis, modeling and characterization of wind turbine hot air ice protection systems

机译:风力涡轮机热空气冰保护系统的现场分析,建模与表征

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In the rapidly expanding market of wind energy, sites in cold climates are becoming popular because of their high wind potential. However, several challenges are associated with energy production in those sites. Such challenges not only include low temperature and high winds, but also multiple icing events. To cope with the negative impacts of icing, wind turbine manufacturers nowadays include ice protection systems (IPS) to their products. It has been observed that the performances of those systems can be greatly influenced by the ambient conditions. In many occasions, under harsh conditions, turbines IPS may not able to prevent ice formation on the blades nor to remove ice that is already formed. Multiple numerical analysis were made on the IPS performance but none of them relies on actual field data. In this paper, the relationship between the turbine stoppage time, wind speed and ambient temperature was studied on a wind farm of over 80 turbines in eastern Canada. The test site is subject to harsh weather and long recovery time and can therefore provide interesting data on icing events. A simplified 1-D heat transfer model of the blades during recovery time has been developed and then compared to the field data. The model was used to generate IPS performance envelopes to delimit, on a temperature vs. wind speed chart, the conditions where the IPS are expected to operate successfully. This analysis showed the importance of having an IPS adapted to the conditions encountered in a given site. To help wind turbine manufacturers design their IPS, a set of distributions of the most relevant meteorological parameters is presented. This set of data has been retrieved using a custom made meteorological conditions monitoring station (MCMS) installed on one of the wind turbines' nacelle. Wind turbine designers, developers and operators can greatly benefit from the data presented in this paper.
机译:在迅速扩大的风能市场中,由于其高风电位,寒冷气候的遗址变得流行。然而,这些挑战与这些地点的能量产生有关。这些挑战不仅包括低温和高风,还包括多个糖霜事件。为了应对糖化的负面影响,现在风力涡轮机制造商包括冰保护系统(IPS)到他们的产品。已经观察到,这些系统的性能可能受到环境条件的大大影响。在许多情况下,在恶劣的条件下,涡轮机IP可能无法防止叶片上的冰形成,也不能去除已经形成的冰。对IPS性能进行了多种数值分析,但它们都不依赖于实际现场数据。本文在加拿大东部80多个涡轮机的风电场研究了涡轮机停止时间,风速和环境温度之间的关系。测试站点受恶劣天气和长期恢复时间,因此可以在结冰事件中提供有趣的数据。已经开发了恢复时间期间叶片的简化的1-D传热模型,然后与现场数据进行比较。该模型用于生成IPS性能信封以在温度与风速图表中划分,IPS预期成功运行的条件。该分析表明,具有适应于给定场地中遇到的条件的IP的重要性。为了帮助风力涡轮机制造商设计他们的IP,提出了一系列最相关的气象参数的分布。已经使用安装在其中一个风力涡轮机的机舱上的定制制作的气象条件监测站(MCM)来检索这组数据。风力涡轮机设计师,开发人员和运营商可以大大受益于本文提出的数据。

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