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Performance of ammonia-water refrigeration systems using artificial neural networks

机译:使用人工神经网络的氨水制冷系统的性能

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In this paper, a new formulation, based on artificial neural network (ANN) model, is presented for the analysis of ammonia-water absorption refrigeration systems (AWRS). Performance analysis of the AWRS is very complex because of analytic functions used for calculating the properties of fluid couples and simulation programs. Therefore, it is extremely difficult to perform analysis of this system. It is well known that the generator temperature, evaporator temperature, condenser temperature, absorber temperature, poor and rich solution concentration affect the AWRS's coefficient of performance (COP) and circulation ratio (f). In this study, COP and f are estimated depending on the above temperatures and concentration values. Using the weights obtained from the trained network a new formulation is presented for the calculation of the COP and f; the use of ANN is proliferating with high speed in simulation. The R~2-values obtained when unknown data were used to the networks was 0.9996 and 0.9873 for the circulation ratio and COP, respectively which is very satisfactory. The use of this new formulation, which can be employed with any programming language or spreadsheet program for the estimation of the circulation ratio and COP of AWRS, as described in this paper, may make the use of dedicated ANN software unnecessary.
机译:本文提出了一种基于人工神经网络(ANN)模型的新配方,用于分析氨水吸收式制冷系统(AWRS)。 AWRS的性能分析非常复杂,这是因为用于计算液力偶的特性和仿真程序的分析功能。因此,对该系统进行分析非常困难。众所周知,发生器温度,蒸发器温度,冷凝器温度,吸收器温度,不良和浓溶液浓度都会影响AWRS的性能系数(COP)和循环比(f)。在这项研究中,COP和f取决于上述温度和浓度值。使用从受过训练的网络中获得的权重,提出了一种新的公式来计算COP和f。在仿真中,人工神经网络的使用正在迅速增加。当将未知数据用于网络时,循环比和COP的R〜2值分别为0.9996和0.9873,非常令人满意。如本文所述,使用这种新公式(可以与任何编程语言或电子表格程序一起使用来估计AWRS的流通率和COP),可能不需要使用专用的ANN软件。

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