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Degradation Model of Photovoltaic Modules Under Multi-Environment Factors Coupling Based on FEM and Failure Physical Model

机译:基于有限元和失效物理模型的多环境因素耦合下的光伏组件退化模型

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Degradation of photovoltaic (PV) module is effected by environment factors such as ambient temperature, ambient humidity, solar irradiation, wind speed and complicated coupling effects. Therefore, the performance degradation is difficult to be accurately assessed, especially for the output power of PV modules. Based on Finite Element Method (FEM) and failure physical model, a degradation model of output power is proposed, where environment factors and coupling effects are considered. First, based on monitoring environment data, the physical field of the PV module is simulated using FEM. Then, module temperature and module humidity are obtained based on the results of physical field simulation. Putting module temperature and module humidity into the failure physical model, the performance degradation rate is obtained. Finally, a degradation model of output power is obtained by combining the output power and degradation rate. The effect of diffusion coefficient on output power degradation is analyzed by varying the diffusion coefficient. Results show that effects of ambient temperature on module temperature and diffusion process cannot be ignored, and the effect of diffusion coefficient on output power degradation is nonlinear.
机译:光伏(PV)模块的降解受环境因素影响,例如环境温度,环境湿度,太阳辐射,风速和复杂的耦合效应。因此,很难准确评估性能下降,尤其是对于PV模块的输出功率而言。基于有限元法和失效物理模型,提出了考虑环境因素和耦合效应的输出功率退化模型。首先,基于监视环境数据,使用FEM模拟PV模块的物理场。然后,基于物理场仿真的结果获得模块温度和模块湿度。将模块温度和模块湿度放入故障物理模型中,可以获得性能下降率。最后,通过组合输出功率和退化率获得输出功率的退化模型。通过改变扩散系数来分析扩散系数对输出功率降级的影响。结果表明,环境温度对模块温度和扩散过程的影响不容忽视,扩散系数对输出功率下降的影响是非线性的。

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