通过倾角和日照时数优化实现站点特定太阳能光伏发电的最大化

Macben Makenzi, J. Muguthu, E. Murimi
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引用次数: 4

摘要

由于技术规模和系统设计方法较差,许多光伏太阳能项目无法实现最佳的能源和电力输出。对低转换率、高间歇性和高资本成本的担忧仍然困扰着光伏项目。建立能够提高太阳能电池阵列产量的设计方法对于解决上述问题至关重要。安装的光伏组件的倾斜角度是影响太阳能组件功率输出的关键因素。有几种资源可供使用,它们为各种全球区域提供通用的线性拟合和倾斜角估计。然而,很少有人能够确定精确的、特定位置的倾斜角度,从而实现最佳的功率输出和能量产生。本文提出了一种方法,用于确定安装在特定位置的太阳能电池板的最佳倾斜角度,从而确保最大的发电量。该建模基于通过考虑多个特定地点的变量来最大化入射到光伏面板表面的太阳辐射。已经导出了不同的超越方程组,用于计算光伏阵列的特定配置的最佳倾角和随后的能量产生。由此产生的算法被用于确定肯尼亚阿西河太阳能光伏装置的最佳倾角和发电量。将动态和静态最佳倾斜角度与该地区使用固定倾斜角度15的基准行业做法进行了比较◦. 据观察,动态倾斜角度可将每日太阳能输出提高6.15%,而计算出的最佳静态倾斜角度可提供2.87%的输出增量。这种改进对光伏系统的技术规范产生了重大影响,从而降低了此类装置的投资和运营成本。它进一步证明,与标准行业实践相比,使用最佳静态倾角可节省高达2.8%的成本和空间。此外,通过使用动态倾斜角度,实现了5.8%的成本和空间节约。
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Maximization of Site-Specific Solar Photovoltaic Energy Generation through Tilt Angle and Sun-Hours Optimization
Many photovoltaic solar projects do not achieve optimum energy and power outputs due to poor technical sizing and system design approaches. Concerns on low-conversion rates, high intermittencies, and high-capital costs still haunt PV projects. The establishment of design methodologies that would result in increased outputs from solar arrays is crucial in addressing the aforementioned issues. The tilt angles of installed PV modules are critical factors that influence the power output of solar modules. Several resources are available that provide generic linear fits and estimation of tilt angles for various global regions. However, very few are capable of determining precise, location-specific tilt angles that would allow for optimal power output and energy generation. This paper presents a methodology developed to establish the optimum tilt angles for solar panels installed at specific locations, thus ensuring maximum energy generation. The modeling is based on the maximization of the solar irradiation incident on the surface of a PV panel by considering multiple site-specific variables. Different sets of transcendent equations have been derived which were used to calculate optimum tilt angles and the subsequent energy generation from specific configurations of photovoltaic arrays. The resulting algorithms were used to determine optimum tilt angles and energy generation for solar PV installations in Athi River, Kenya. Dynamic and static optimal tilt angles were compared with the region’s baseline industry practice of using a fixed tilt angle of 15◦. It was observed that the dynamic tilt angles improved the daily solar energy output by up to 6.15%, while the computed optimal static tilt angle provided a 2.87% output increment. This improvement presents a significant impact on the technical specification of the PV system with a consequent reduction in the investment and operational cost of such installations. It further demonstrated that the use of the optimum static tilt angle results in cost and space savings of up to 2.8% as compared to the standard industry practice. Additionally, 5.8% cost and space savings were attained by the utilization of dynamic tilt angles.
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