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SOLAR MONITORING, FORECASTING, AND VARIABILITY ASSESSMENT AT SMUD

机译:Smud的太阳监测,预测和可变性评估

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The paper summarizes the deployment of a 71 station solar monitoring network in Sacramento, California, and its use in validating variability relationships as well as satellite based irradiance datasets. The data cleanup methods are described for eliminating shading artifacts in the ground-based solar monitoring data. The cleaned data is then evaluated to confirm theoretical relationships of spatial correlation between PV plants developed by Hoff and Perez. The relationships are confirmed for 1 minute, 5 minute, and 10 minute timeframes. Additionally, the ground-based datasets are compared to satellite datasets for determining error. Possible sources of error are discussed, and results show that for a half hour timeframe, error or difference in GHI is between 6 and 11%. For DNI, errors range from 17 - 22%. A portion of the errors can be attributed to bias, with GHI bias ranging from between -1 and -7% indicating satellite estimated slightly greater GHI resource and DNI bias ranging from between -1 and 11%, indicating generally that the ground-based RSR's measured slightly greater values than the satellite datasets.
机译:本文总结了在萨克拉门托,加利福尼亚州的71站太阳能监控网络的部署及其在验证可变性关系以及基于卫星的辐照性数据集中。描述了数据清理方法,用于消除基于地面的太阳监测数据中的阴影伪像。然后评估清洁的数据以确认由Hoff和Perez开发的光伏工厂之间的空间相关性的理论关系。确认关系1分钟,5分钟和10分钟的时间框架。另外,将基于基于地基的数据集与卫星数据集进行比较,以确定误差。讨论了可能的错误源,结果显示半小时的时间帧,GHI的错误或差异在6到11%之间。对于DNI,错误范围为17-22%。误差的一部分可以归因于偏置,GHI偏置范围为-1和-7%,指示卫星的卫星估计稍大的GHI资源和DNI偏差范围在-1到11%之间,通常表示基于地面的RSR的RSR测量比卫星数据集更大的值稍大。

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