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Alternative approach in performance analysis of organic rankine cycle (ORC)

机译:替代方法的性能分析有机郎肯循环(兽人)

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摘要

In this study, artificial neural networks (ANNs) and adaptive neuro-fuzzy (ANFIS) have been used for performance analysis of organic rankine cycle (ORC) using refrigerants R123, R125, R227, R365mfc, SES36. It is well known that the steam generator temperature, condenser temperature, subcooling temperature, and superheating temperature affect the efficiency ratio of ORC. Therefore, efficiency ratio is forecasted depending on variable system parameters values. The results of ANN are compared with ANFIS in which the same data sets are used. Furthermore, new formulations derived from ANN for five refrigerants are presented for the determination of the efficiency ratio. The R-2 values obtained from the networks were 0.99917, 0.99670, 0.99870, 0.99928, and 0.99911 for the R123, R125, R227, R365mfc, SES36 respectively which is very satisfactory. (c) 2018 American Institute of Chemical Engineers Environ Prog, 38: 254-259, 2019
机译:在这项研究中,人工神经网络(ann)和自适应神经模糊(简称ANFIS)使用有机郎肯循环的性能分析(兽人)使用制冷剂二、R125 R227,R365mfc SES36。发电机温度、冷凝器温度,低温冷却温度,过热温度影响的效率比兽人。因此,效率比预测根据变量系统参数值。简称ANFIS的安的结果进行了对比它使用了相同的数据集。新配方来自安五介绍了制冷剂的决心效率比。从网络0.99917,0.99670,0.99870,0.99928和0.99911的二氯、R125 R227,R365mfc,分别SES36非常令人满意。化学工程师环境掠夺,38:254 - 259,2019

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