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Review of empirical solar radiation models for estimating global solar radiation of various climate zones of China

机译:探讨中国各种气候区全球太阳辐射的经验太阳辐射模型

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摘要

Utilizing solar energy requires accurate information about global solar radiation (GSR), which is critical for designers and manufacturers of solar energy systems and equipment. This study aims to examine the literature gaps by evaluating recent predictive models and categorizing them into various groups depending on the input parameters, and comprehensively collect the methods for classifying China into solar zones. The selected groups of models include those that use sunshine duration, temperature, dew-point temperature, precipitation, fog, cloud cover, day of the year, and different meteorological parameters (complex models). 220 empirical models are analyzed for estimating the GSR on a horizontal surface in China. Additionally, the most accurate models from the literature are summarized for 115 locations in China and are distributed into the above categories with the corresponding solar zone; the ideal models from each category and each solar zone are identified. Comments on two important temperature-based models that are presented in this work can help the researchers and readers to be unconfused when reading the literature of these models and cite them in a correct method in future studies. Machine learning techniques exhibit performance GSR estimation better than empirical models; however, the computational cost and complexity should be considered at choosing and applying these techniques. The models and model categories in this study, according to the key input parameters at the corresponding location and solar zone, are helpful to researchers as well as to designers and engineers of solar energy systems and equipment.
机译:利用太阳能需要准确的关于全球太阳能辐射(GSR)的信息,这对于太阳能系统和设备的设计者和制造商至关重要。本研究旨在通过评估最近的预测模型来检查文献差距,并根据输入参数对其进行分组,并全面地收集将中国分类为太阳能区的方法。所选择的模型组包括使用阳光持续时间,温度,露点温度,降水,雾,云盖,一年中的水平和不同气象参数(复杂模型)。分析了220实证模型以估算中国水平表面上的GSR。此外,来自文献中最准确的模型总结在中国115个地点,并用相应的太阳能区分发到上述类别;识别每个类别和每个太阳能区的理想模型。评论本工作中提供的两个重要的基于温度的模型可以帮助研究人员和读者在阅读这些模型的文献时不被发使用,并在未来的研究中以正确的方法引用它们。机器学习技术表现出比实证模型更好的性能GSR估计;但是,应在选择和应用这些技术时考虑计算成本和复杂性。根据该研究的模型和型号,根据相应位置和太阳能区的关键输入参数,对研究人员以及太阳能系统和设备的设计者和工程师有帮助。

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