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Numerical Modeling of c-Si PV Modules by Coupling the Semiconductor with the Thermal Conduction, Convection and Radiation Equations

机译:通过将半导体与热传导,对流和辐射方程耦合来对c-Si光伏组件进行数值建模

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摘要

Commonly, the thermal behavior of solar cell modules is calculated with analytical approaches using non wavelength-dependent optical data. Here, we employ ray tracing of entire solar modules at wavelengths of 300-2500 nm to calculate heat sources. Subsequently, finite element method (FEM) simulations are used to solve the semiconductor equations coupled with the thermal conduction, thermal convection, and thermal radiation equations. The implemented model is validated with measurements from an outdoor test over the period of an entire year. Our ray tracing analysis of different solar modules under the AM.15G spectrum shows that, for a standard module about 18.9% of the sun's intensity becomes parasitically absorbed. A loss analysis shows that the biggest parasitic heat source is the cell's full-area rear side metallization. We hence propose the use of a SiNx layer as rear side mirror to reduce the parasitic absorption to 11.7%. This change can lead to a 3.2 °C lower module operating temperature, which results in an about 5 W higher electrical power output when considering a typical 260 W module.
机译:通常,太阳能电池模块的热行为是通过使用不依赖于波长的光学数据的分析方法来计算的。在这里,我们采用整个太阳能电池组件在300-2500 nm波长处的光线追踪来计算热源。随后,使用有限元方法(FEM)模拟来求解与热传导,热对流和热辐射方程耦合的半导体方程。整个一年中,通过室外测试的测量结果对已实现的模型进行了验证。我们在AM.15G光谱下对不同太阳能组件的光线追踪分析表明,对于标准组件,大约18.9%的太阳强度被寄生吸收。损耗分析表明,最大的寄生热源是电池的整个区域的背面金属化。因此,我们建议使用SiNx层作为后侧镜,以将寄生吸收降低到11.7%。这种变化可能导致模块工作温度降低3.2°C,当考虑使用典型的260 W模块时,功率输出将提高约5W。

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