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Spectrally corrected direct normal irradiance based on artificial neural networks for high concentrator photovoltaic applications

机译:基于人工神经网络的光谱校正直接法向辐照度在高聚光光伏应用中的应用

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摘要

The electrical characterization of a HCPV (high concentrator photovoltaic) module or system is key issue for systems design and energy prediction. The electrical modelling of an HCPV module shows a significantly greater level of complexity than conventional PV (photovoltaic) technology due to the use of multi-junction solar cells and optical devices. An interesting approach for the modelling of an HCPV module is based on the premise that the electrical parameters of an HCPV module can be obtained from the spectrally corrected direct normal irradiance and the cell temperature. The advantage of this approach is that the spectral effects of an HCPV device are quantified by adjusting only the incident direct normal irradiance. The aim of this paper is to introduce a new method based on artificial neural networks to spectrally correct the direct normal irradiance for the electrical characterization of an HCPV module. The method takes into account the main atmospheric parameters that influence the performance of an HCPV module: air mass, aerosol optical depth and precipitable water. Results show that the proposed method accurately predicts the spectrally corrected direct normal irradiance with a RMSE (root mean square error) of 2.92% and a MBE (mean bias error) of 0%.
机译:HCPV(高聚光光伏)模块或系统的电气特性是系统设计和能量预测的关键问题。由于使用了多结太阳能电池和光学设备,HCPV模块的电气建模显示出比传统的PV(光伏)技术更高的复杂度。 HCPV模块建模的一种有趣方法是基于这样一个前提,即可以从经光谱校正的直接法向辐照度和电池温度获得HCPV模块的电参数。这种方法的优势在于,仅通过调节入射的直接法向辐照度就可以量化HCPV设备的光谱效应。本文的目的是介绍一种基于人工神经网络的新方法,用于光谱校正HCPV模块的电气特性,以直接校正正常辐照度。该方法考虑了影响HCPV组件性能的主要大气参数:空气质量,气溶胶光学深度和可沉淀水。结果表明,该方法可准确预测经光谱校正的直接法向辐照度,其RMSE(均方根误差)为2.92%,MBE(平均偏差误差)为0%。

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