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Investigation of convective and radiative heat losses from modified cavity based solar dish steam generator using ANN

机译:基于人工神经网络的改进型腔式太阳能碟式蒸汽发生器对流和辐射热损失的研究

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In this article, total heat losses from three configurations of modified cavity receiver of solar parabolic dish are investigated using 3-D numerical model. The effects of various parameters such as diameter ratio (d/D), angle of inclination (θ), operating temperature (T), insulation thickness (t) and emissivity (ε) of the cavity cover on the heat losses from the modified cavity receiver are investigated. The variable boundary conditions are considered for modified cavity receiver to produce sub-cooled hot water, saturated steam and superheated steam. An Artificial Neural Network (ANN) model is developed to predict the heat loss for a large set of influencing parameters. Based on ANN modelling, improved Nusselt number correlations are proposed for convective, radiative and total heat losses from the modified cavity receiver. The convective heat losses are greatly influenced by receiver inclination whereas the radiation heat losses are influenced by the cavity cover emissivity. The diameter ratio also plays a major role in heat losses from the cavity receiver. The total heat loss is estimated as 522 W for superheat steam condition for θ = 0 and d/D = 0.05; whereas it is 288 W for diameter ratio 1. The total heat loss varies 25% for inclinations 0 and 90°. For saturated and sub-cooled steam conditions, the total heat loss variation is found to be 28% and 21% respectively from 0 to 90° inclinations for diameter ratio of 0.05. The present method predicts the heat losses more accurately compared with the existing models.
机译:在本文中,使用3-D数值模型研究了三种结构的改进型太阳能抛物面接收器的总热损失。改型腔的热损失对直径覆盖率(d / D),倾斜角(θ),工作温度(T),绝缘厚度(t)和发射率(ε)等各种参数的影响接收器进行了调查。对于改进型腔体接收器,要考虑可变边界条件,以产生过冷的热水,饱和蒸汽和过热蒸汽。开发了人工神经网络(ANN)模型来预测大量影响参数的热量损失。基于人工神经网络模型,提出了改进的努塞尔数相关性,用于改进型腔体接收器的对流,辐射和总热损失。对流热损失受接收器倾斜度的影响很大,而辐射热损失受腔盖辐射率的影响。直径比在空腔接收器的热损失中也起主要作用。对于过热蒸汽条件(θ= 0和d / D = 0.05),总热损失估计为522 W;直径比为1时为288W。倾斜度为0和90°时,总热量损失为25%。对于饱和和过冷蒸汽条件,发现直径比为0.05时,从0到90°倾斜度的总热损失变化分别为28%和21%。与现有模型相比,本方法可以更准确地预测热量损失。

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