全息透镜分光光伏系统增加漫射收集和年能源产量

S. Vorndran, Yuechen Wu, Silvana Ayala, R. Kostuk
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摘要

聚光和分光光伏(PV)组件在离轴照明下接收角度有限,存在光损耗。这种损失表现为在大量绝缘扩散的位置产生能量的大量减少。在这项工作中,设计了一个分光光伏系统,用于在一系列照明条件下有效地收集和转换光。该系统使用全息透镜将短波长的光集中到一个更小、更昂贵的磷化铟镓(InGaP)光伏电池上。轴附近的高效光伏电池被硅(Si)包围,这是一种更便宜的材料,可以收集更广泛的太阳光谱。在直接照明下,该器件通过分光实现了更高的转换效率。在漫射照明下,该装置收集光的效率可与平板硅模块相媲美。讨论了全息透镜的设计。利用非顺序光线追踪软件模拟了从直接到漫射的一系列光照条件下模块的光效率和功率输出。使用直接和扩散典型计量年(TMY3)辐照度测量,计算了几个安装地点的模块年发电量。将分光模块的产能与全平板硅参考模块的产能进行了比较。
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Holographic lens spectrum splitting photovoltaic system for increased diffuse collection and annual energy yield
Concentrating and spectrum splitting photovoltaic (PV) modules have a limited acceptance angle and thus suffer from optical loss under off-axis illumination. This loss manifests itself as a substantial reduction in energy yield in locations where a significant portion of insulation is diffuse. In this work, a spectrum splitting PV system is designed to efficiently collect and convert light in a range of illumination conditions. The system uses a holographic lens to concentrate shortwavelength light onto a smaller, more expensive indium gallium phosphide (InGaP) PV cell. The high efficiency PV cell near the axis is surrounded with silicon (Si), a less expensive material that collects a broader portion of the solar spectrum. Under direct illumination, the device achieves increased conversion efficiency from spectrum splitting. Under diffuse illumination, the device collects light with efficiency comparable to a flat-panel Si module. Design of the holographic lens is discussed. Optical efficiency and power output of the module under a range of illumination conditions from direct to diffuse are simulated with non-sequential raytracing software. Using direct and diffuse Typical Metrological Year (TMY3) irradiance measurements, annual energy yield of the module is calculated for several installation sites. Energy yield of the spectrum splitting module is compared to that of a full flat-panel Si reference module.
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