Solar Energy Resource Assessment in Minna, Nigeria: Influence of Sunshine Duration and Extraterrestrial Radiation
Keywords:
Sunshine duration, Extraterrestrial radiation, Clearness Photovoltaic, Nigeria.Abstract
Accurate solar energy resource assessment is fundamental for the efficient planning,
design, and deployment of photovoltaic (PV) systems, particularly in tropical regions
where atmospheric conditions strongly influence solar irradiance. This study
evaluated the influence of sunshine duration and extraterrestrial radiation on solar
energy potential in Minna, Nigeria, using ten years (2015–2024) of meteorological
data. The analysis focused on the relationships among global solar radiation, sunshine
duration, extraterrestrial radiation, and clearness index to characterize the site's
solar resource availability. The results indicate an annual mean global solar radiation
(={H}) of approximately 18–19 MJ·m⁻²·day⁻¹ (equivalent to about 5.0–5.3
kWh·m⁻²·day⁻¹), with maximum values occurring during the dry season (~21
MJ·m⁻²·day⁻¹) and minimum values during the wet season (~14–15 MJ·m⁻²·day⁻¹).
Despite these seasonal variations, the observed solar radiation consistently exceeded
the minimum operational threshold required for efficient PV electricity generation
throughout the year. Statistical analysis revealed a strong positive correlation
between sunshine duration and the clearness index (R² = 0.89), demonstrating the
significant influence of sunshine hours on atmospheric transmissivity. In contrast, the
weak relationship between extraterrestrial radiation (={H}ₒ) and measured global
solar radiation (={H}) (R² ≈ 0.04) indicates that atmospheric factors, including cloud
cover, humidity, and dust aerosols, predominantly regulate surface solar radiation.
The estimated annual PV electricity yield of 1,400–1,800 kWh/kWp further confirms
Minna's high solar energy potential. These findings underscore the importance of
climate-responsive PV system design, incorporating seasonal variability, hybrid energy
integration, and effective dust mitigation strategies to maximize long-term energy
efficiency, reliability, and sustainability.
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