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Modelling the heat dynamics of building integrated and ventilated photovoltaic modules

机译:建模建筑集成式和通风式光伏模块的热力学

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This paper deals with mathematical modelling of the heat transfer of building integrated photovoltaic (BIPV) modules.rnThe efficiency of the photovoltaic (PV) module and its temperature are negatively correlated. It is therefore of interest to lower the temperature of the PV module by increasing the heat transfer from the PV module. The experiment and data originate from a test reference module the EC-JRC Ispra. The set-up provides the opportunity of changing physical parameters, the ventilation speed and the type of air flow, and this makes it possible to determine the preferable set-up.rnTo identify best set-up, grey-box models consisting of stochastic differential equations are applied. The models are first order stochastic state space models. Maximum likelihood estimation and the extended Kalman filter are applied in the parameter estimation phase. To validate the estimated models, plots of the residuals and autocorrelation functions of the residuals are analyzed.rnThe analysis has revealed that it is necessary to use non-linear state space models in order to obtain a satisfactory description of the PV module temperature, and in order to be able to distinguish the variations in the set-up. The heat transfer is increased when the forced ventilation velocity is increased, while the change in type of air flow does not have as striking influence. The residual analysis show that the best description of the PV module temperature is obtained when fins, disturbing the laminar flow and making it turbulent, are applied in the set-up combined with high level of air flow. The improved description by the model is mainly seen in periods with high solar radiation.
机译:本文对建筑集成光伏(BIPV)组件传热的数学建模进行了研究。rn光伏(PV)组件的效率与温度成负相关。因此,令人感兴趣的是通过增加来自PV模块的热传递来降低PV模块的温度。实验和数据均来自EC-JRC Ispra的测试参考模块。该设置提供了更改物理参数,通风速度和气流类型的机会,这使确定最佳设置成为可能。rn为了确定最佳设置,灰箱模型由随机差分组成应用方程式。这些模型是一阶随机状态空间模型。在参数估计阶段应用最大似然估计和扩展卡尔曼滤波器。为了验证估计的模型,分析了残差图和残差的自相关函数。分析表明,有必要使用非线性状态空间模型以获得对光伏组件温度的满意描述,并且为了能够区分设置中的变化。当强制通风速度增加时,传热增加,而气流类型的变化则没有显着影响。残差分析表明,将翅片扰乱层流并使之湍流并结合高水平气流来使用,可以最好地描述PV模块的温度。该模型对描述的改进主要体现在太阳辐射较高的时期。

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