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首页> 外文期刊>International Journal of Photoenergy >A Novel Hybrid Model for Short-Term Forecasting in PV Power Generation
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A Novel Hybrid Model for Short-Term Forecasting in PV Power Generation

机译:光伏发电中短期预测的一种新型混合模型

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摘要

The increasing use of solar power as a source of electricity has led to increased interest in forecasting its power output over short-time horizons. Short-term forecasts are needed for operational planning, switching sources, programming backup, reserve usage, and peak load matching. However, the output of a photovoltaic (PV) system is influenced by irradiation, cloud cover, and other weather conditions. These factors make it difficult to conduct short-term PV output forecasting. In this paper, an experimental database of solar power output, solar irradiance, air, and module temperature data has been utilized. It includes data from the Green Energy Office Building in Malaysia, the Taichung Thermal Plant of Taipower, and National Penghu University. Based on the historical PV power and weather data provided in the experiment, all factors that influence photovoltaic-generated energy are discussed. Moreover, five types of forecasting modules were developed and utilized to predict the one-hour-ahead PV output. They include the ARIMA, SVM, ANN, ANFIS, and the combination models using GA algorithm. Forecasting results show the high precision and efficiency of this combination model. Therefore, the proposed model is suitable for ensuring the stable operation of a photovoltaic generation system.
机译:随着太阳能的越来越多地利用电力,导致对在短时间视野上预测其功率输出的兴趣增加。操作规划,交换源,编程备份,储备使用和峰值负载匹配需要短期预测。然而,光伏(PV)系统的输出受辐射,云覆盖和其他天气条件的影响。这些因素使得难以进行短期PV输出预测。本文已经利用了太阳能输出,太阳辐照度,空气和模块温度数据的实验数据库。它包括来自马来西亚的绿色能源办公楼,台中的台中热电厂和国民澎湖大学。基于实验中提供的历史光伏电源和天气数据,讨论了影响光伏产生能量的所有因素。此外,开发并利用了五种类型的预测模块来预测一小时前方PV输出。它们包括使用GA算法的Arima,SVM,ANN,ANFI和组合模型。预测结果显示了这种组合模型的高精度和效率。因此,所提出的模型适用于确保光伏发电系统的稳定运行。

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