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Thermodynamic analysis of variable speed refrigeration system using artificial neural networks

机译:基于人工神经网络的变速制冷系统热力学分析

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This study presents thermodynamic performance modeling of an experimental refrigeration system driven by variable speed compressor using artificial neural networks (ANNs) with small data sets. Controlling the rotational speed of compressor with a frequency inverter is one of the best methods to vary the capacity of refrigeration system. For this aim, an experimental refrigeration system was designed with a frequency inverter mounted on compressor electric motor. The experiments were made for different compressor electric motor frequencies. Instead of several experiments, the use of ANNs had been proposed to determine the system performance parameters based on various compressor frequencies and cooling loads using results of experimental analysis. The backpropagation learning algorithm with two different variants was used in the network. In order to train the neural network, limited experimental measurements were used as training and test data. The best fitting training data set was obtained with eight neurons in the hidden layer. The results showed that the statistical error values of training were obviously within acceptable uncertainties. Also the predicted values were very close to actual values.
机译:这项研究提出了使用小型数据集的人工神经网络(ANN)对变速压缩机驱动的实验制冷系统进行热力学性能建模。用变频器控制压缩机的转速是改变制冷系统容量的最佳方法之一。为此,设计了一个实验制冷系统,该系统的变频器安装在压缩机电动机上。针对不同的压缩机电动机频率进行了实验。代替了几个实验,已经提出使用人工神经网络来使用实验分析的结果,基于各种压缩机频率和冷却负荷来确定系统性能参数。网络中使用了具有两种不同变体的反向传播学习算法。为了训练神经网络,有限的实验测量值被用作训练和测试数据。在隐藏层中使用八个神经元获得了最佳拟合训练数据集。结果表明,训练的统计误差值明显在可接受的不确定性范围内。预测值也非常接近实际值。

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