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Validation and Performance of Satellite Meteorological Dataset MERRA-2 for Solar and Wind Applications

机译:太阳能和风应用卫星气象数据集Merra-2的验证和性能

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摘要

Fast-growing energy demand of the world makes the researchers focus on finding new energy sources or optimizing already-developed approaches. For an efficient use of solar and wind energy in an energy system, correct design and sizing of a power system is of high importance and improving or optimizing the process of data obtaining for this purpose leads to higher performance and lower cost per unit of energy. It is essential to have the most precise possible estimation of solar and wind energy potential and other local weather parameters in order to fully feed the demand and avoid extra costs. There are various methods for obtaining local data, such as local measurements, official organizational data, satellite obtained, and reanalysis data. In this paper, the Modern-Era Retrospective analysis for Research and Applications dataset version 2 (MERRA-2) dataset provided by NASA is introduced and its performance is evaluated by comparison to various locally measured datasets offered by meteorological institutions such as Meteonorm and Deutscher Wetterdienst (DWD, or Germany’s National Meteorological Service) around the world. After comparison, correlation coefficients from 0.95 to 0.99 are observed for monthly global horizontal irradiance values. In the case of air temperature, correlation coefficients of 0.99 and for wind speed from 0.81 to 0.99 are observed. High correlation with ground measurements and relatively low errors are confirmed, especially for irradiance and temperature values, that makes MERRA-2 a valuable dataset, considering its world coverage and availability.
机译:世界快速增长的能源需求使得研究人员专注于寻找新的能源来源或优化已经开发的方法。用于在能量系统的有效利用太阳能和风能的,电力系统的正确的设计和大小是非常重要的和改进或优化数据获得用于此目的导致更高的性能和每单位能量成本较低的过程。有太阳能和风能潜力等当地气象参数的最精确的可能估计,以充分饲料的需求和避免额外成本是至关重要的。有获取本地数据,如局部测量,官方组织的数据,卫星获得的,和再分析数据的各种方法。在本文中,为研究与应用数据集版本2(MERRA-2)由NASA数据集提供的现代时期的回顾性分析被引入,其性能是通过比较由气象机构如Meteonorm和德国气象提供的各种本地测量的数据集进行评估(DWD,或德国的国家气象局)在世界各地。比较之后,相关系数为0.95至0.99,观察到每月全球水平辐照度的值。在空气温度的情况下,为0.99和风速从0.81至0.99的相关系数是观察到的。与地面测量和比较低的错误较高的相关性得到证实,尤其是对辐照度和温度值,这使得MERRA-2的宝贵数据集,考虑到其全球覆盖范围和可用性。

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