首页> 外文期刊>The Annals of applied statistics >COVARIATE MATCHING METHODS FOR TESTING AND QUANTIFYING WIND TURBINE UPGRADES
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COVARIATE MATCHING METHODS FOR TESTING AND QUANTIFYING WIND TURBINE UPGRADES

机译:用于测试和量化风力涡轮机升级的协变量匹配方法

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摘要

In the wind industry, engineers perform retrofitting upgrades on inservice wind turbines for the purpose of improving power production capabilities. Considering how costly an upgrade can be, people often wonder about the upgrade effect: whether it indeed improves turbine performances, and if so, how much. One cannot simply compare power outputs for the purpose of assessing a turbine's improvement, as wind power generation is affected by an array of environmental covariates, including wind speed, wind direction, temperature, pressure as well as other atmosphere dynamics. For a fair comparison to discern the upgrade effect, it is critical to have these environmental effects controlled for while comparing power output differences. Most existing approaches rely on establishing a power curve model and let the model account for the environmental effects. In this paper, we propose a different approach, which is to devise a covariate matching method to ensure the environmental covariates to have comparable distribution profiles before and after an action of upgrade. Once the covariates are matched, paired t - tests can be applied to the power outputs for testing the significance of the upgrade effect. The relative increase in power production can also be quantified. The proposed approach is simple to use and relies on fewer assumptions than the power curve modeling approach.
机译:在风力行业中,工程师在智能涡轮机上进行改造升级,以提高电力生产能力。考虑到升级的成本如何,人们常常想知道升级效果:它是否确实改善了涡轮机的性能,如果是的话,多少钱。一个人不能简单地比较电力输出,以评估涡轮机的改进,因为风力发电受环境协变量的影响,包括风速,风向,温度,压力以及其他大气动态。为了辨别升级效果的公平比较,对于在比较功率输出差异的同时控制这些环境效应至关重要。大多数现有方法依赖于建立电源曲线模型,并让模型占环境影响。在本文中,我们提出了一种不同的方法,该方法是设计一种协变量的匹配方法,以确保在升级行动之前和之后的环境协变量具有可比分布型材。一旦协变量匹配,配对的T - 测试可以应用于用于测试升级效果的重要性的功率输出。还可以量化电力产生的相对增加。所提出的方法易于使用,并且依赖于比电力曲线建模方法更少的假设。

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