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Theoretical approach of a flat-plate solar collector taking into account the absorption and emission within glass cover layer

机译:平板集热器的理论方法考虑了玻璃覆盖层内的吸收和发射

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摘要

A rigorous theoretical approach of a flat-plate solar collector with a black absorber considering the glass cover as an absorbing-emitting media is presented. The glass material is analyzed as a non-gray plane-parallel medium subjected to solar and thermal irradiations in one-dimensional case using the Radiation Element Method by Ray Emission Model (REM~2). The optical constants of a clear glass window proposed by Rubin have been used. These optical constants, 160 values of real part n and imaginary part k of the complex refractive index of a clear glass, cover the range of interest for calculating the solar and thermal radiative transfer through the glass cover. The computational time for predicting the thermal behavior of solar collector was found to be prohibitively long for the non-gray calculation using 160 values of n and k. Therefore a suitable semi-gray model is proposed for rapid calculation. The profile of the efficiency curve obtained in the present study was found to be not linear in shape. Indeed, the heat loss from the collector is a combination of convection and radiation and highly non linear. The effect of the outside convective heat transfer on the efficiency curve is also studied. In fact, when the convection is the dominant heat transfer mode compared with the radiation one, the profile of the efficiency curve is more or less straight line. Consequently, the heat loss coefficient could be calculated using Klein model. It has been also shown that the effect of the wind speed on the glass cover mean temperature is very important. This effect increases with the increase of the mean absorber temperature.
机译:提出了一种严格的理论方法,即将玻璃罩作为吸收发射介质的带有黑色吸收剂的平板太阳能收集器。使用射线发射模型(REM〜2)的辐射元素方法,将玻璃材料分析为一维情况下经受太阳和热辐射的非灰色平面平行介质。已经使用了鲁宾提出的透明玻璃窗的光学常数。这些光学常数,即透明玻璃的复数折射率的实部n和虚部k的160值,覆盖了计算通过玻璃盖的太阳辐射和热辐射传递的关注范围。对于使用160个n和k值的非灰色计算,发现预测太阳能集热器热行为的计算时间过长。因此,提出了一种适合的半灰色模型用于快速计算。发现本研究中获得的效率曲线的轮廓不是线性的。实际上,来自收集器的热损失是对流和辐射的结合,并且是高度非线性的。还研究了外部对流传热对效率曲线的影响。实际上,当对流是辐射的主要传热方式时,效率曲线的轮廓或多或少是直线。因此,可以使用Klein模型计算热损失系数。还已经表明,风速对玻璃盖平均温度的影响非常重要。随着平均吸收器温度的升高,该效应增加。

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