Exploring Global Solar Radiation: Enhancing Ground-Level Solar Radiation Prediction using Hottel's Semi-Empirical Model and Sunshine Duration Analysis

M. Nfaoui, Youssef Werzgan, Sanaa Hayani-Mounir, Khalil El-Hami
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Abstract

The effective utilization of solar energy at a specific geographical locale is contingent upon the acquisition and assimilation of comprehensive and meticulous solar radiation data pertinent to that specific site. A profound understanding of these datasets constitutes a pivotal factor in the precision-driven design and dimensioning of solar energy systems. It ensues that the attainment of accurate system dimensioning is contingent upon the continual availability of spatially and temporally resolved measurements. The principal objective of this research endeavor is to expound upon the methodological approach employed in the computation of solar energy parameters, alongside the delineation of the pertinent dataset by extrapolating salient insights. Prior to the initiation of any optimization endeavor, a methodical scrutiny of the geospatial and temporal distribution of solar insolation stands as a preeminent prerequisite, indispensably contributing to the efficacious implementation of solar infrastructure. The assessment of solar energy generation potential within the examined region necessitates a meticulous investigation of the theoretical solar resource inherent to Khouribga. Through a meticulous computation regimen encompassing insolation and solar irradiance metrics, this investigation facilitates the discernment of the optimal incident angle for maximal energy absorption by solar photovoltaic cells.
探索全球太阳辐射:利用霍特尔半经验模型和日照时间分析加强地面太阳辐射预测
要在特定的地理位置有效利用太阳能,就必须获取和吸收与该特定地点相关的全面细致的太阳辐射数据。深刻理解这些数据集是精确设计和确定太阳能系统尺寸的关键因素。因此,要实现精确的系统尺寸,就必须不断获得空间和时间分辨率的测量数据。这项研究工作的主要目的是阐述计算太阳能参数时所采用的方法,同时通过推断突出的见解来划分相关的数据集。在开始任何优化工作之前,对太阳日照的地理空间和时间分布进行有条不紊的审查是一个重要的先决条件,这对有效实施太阳能基础设施具有不可或缺的作用。要评估考察地区的太阳能发电潜力,就必须对胡里卜加地区固有的太阳能理论资源进行细致的调查。通过包含日照和太阳辐照度指标的精细计算方案,这项调查有助于确定太阳能光伏电池吸收最大能量的最佳入射角。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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