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首页> 外文期刊>Journal of thermal analysis and calorimetry >Optimization of turbulent convective heat transfer of CuO/water nanofluid in a square duct
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Optimization of turbulent convective heat transfer of CuO/water nanofluid in a square duct

机译:优化方管中CuO /水纳米流体的湍流对流热传递

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Analysis of the turbulent forced convective heat transfer of CuO/water nanofluid has been conducted employing an artificial neural network. A backpropagation network with two hidden layers has been used to investigate and optimize the effects of the Reynolds number, volume fraction and nanoparticle diameter on heat transfer, pressure drop and entropy generation. In order to train the network, the Levenberg-Marquardt algorithm has been applied. The results of a total of 168 sample models, considering the extended range of input data, have been prepared as the training data for the network. The precision of the network based on the mean squared error for a set of random experimental data has been approximately 0.05. The obtained results of the artificial neural network are presented in an extended range of Re, phi and particle diameter. Results indicate that heat transfer enhancement is achieved by increasing Re and volume fraction. While augmenting Re reduces the friction factor, it is increased at higher volume fractions. The optimum conditions concerning Nusselt number, friction factor and entropy generation have been investigated. For instance, at low volume fractions, the ratio Nu/f(1/3)S(2) has the highest value in the range 5 x 10(4)
机译:采用人工神经网络进行了CuO /水纳米流体的湍流强制对流传热分析。具有两个隐藏层的反向慢化网络已被用于研究和优化雷诺数,体积分数和纳米颗粒直径对传热,压降和熵产生的影响。为了训练网络,已经应用了Levenberg-Marquardt算法。考虑到延长输入数据范围,总共168个样本模型的结果已被准备为网络的培训数据。基于一组随机实验数据的平均平方误差的网络精度大约为0.05。所得人工神经网络的结果在Re,Phi和粒径的延长范围内呈现。结果表明,通过增加Re和体积分数来实现热传递增强。在增强RE降低摩擦系数时,在较高的体积分数上增加。研究了关于纽带,摩擦因子和熵生成的最佳条件。例如,在低体积分数中,比率Nu / F(1/3)S(2)的最高值在5×10(4)

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