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Some Applications of ANN to Solar Radiation Estimation and Forecasting for Energy Applications

机译:人工神经网络在能源应用中太阳辐射估计和预报中的一些应用

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摘要

In solar energy, the knowledge of solar radiation is very important for the integration of energy systems in building or electrical networks. Global horizontal irradiation (GHI) data are rarely measured over the world, thus an artificial neural network (ANN) model was built to calculate this data from more available ones. For the estimation of 5-min GHI, the normalized root mean square error (nRMSE) of the 6-inputs model is 19.35%. As solar collectors are often tilted, a second ANN model was developed to transform GHI into global tilted irradiation (GTI), a difficult task due to the anisotropy of scattering phenomena in the atmosphere. The GTI calculation from GHI was realized with an nRMSE around 8% for the optimal configuration. These two models estimate solar data at time, t, from other data measured at the same time, t. For an optimal management of energy, the development of forecasting tools is crucial because it allows anticipation of the production/consumption balance; thus, ANN models were developed to forecast hourly direct normal (DNI) and GHI irradiations for a time horizon from one hour (h+1) to six hours (h+6). The forecasting of hourly solar irradiation from h+1 to h+6 using ANN was realized with an nRMSE from 22.57% for h+1 to 34.85% for h+6 for GHI and from 38.23% for h+1 to 61.88% for h+6 for DNI.
机译:在太阳能中,太阳辐射的知识对于将能源系统集成到建筑物或电网中非常重要。全球水平辐射(GHI)数据很少在世界范围内测量,因此建立了人工神经网络(ANN)模型,以便从更多可用数据中计算出该数据。对于5分钟GHI的估计,六输入模型的归一化均方根误差(nRMSE)为19.35%。由于太阳能收集器经常倾斜,因此开发了第二个ANN模型,将GHI转换为整体倾斜辐射(GTI),由于大气中散射现象的各向异性,这是一项艰巨的任务。对于最佳配置,通过GHI计算出GTI的nRMSE约为8%。这两个模型根据同时测量的其他数据t估算了时间t的太阳能数据。为了优化能源管理,预测工具的开发至关重要,因为它可以预测生产/消费平衡。因此,开发了ANN模型来预测每小时一小时(h + 1)到六个小时(h + 6)的每小时直接法线(DNI)和GHI辐射。利用ANN对从h + 1到h + 6的每小时太阳辐射进行了预测,nRMSE从h + 1的22.57%到GHI的h + 6的34.85%和h + 1的38.23%到h的61.88% DNI +6。

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