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Artificial Intelligence-Based Optimization of Reverse Osmosis Systems Operation Performance

机译:基于人工智能的反渗透系统操作性能

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摘要

In recent years, reverse osmosis (RO) systems have been highly utilized in industrial processes. One of the most important operational issues of these systems is membrane fouling, which leads to high operating costs and environmental impacts. The purpose of this research is to optimize RO systems' operation to reduce fouling, increase membrane life span, and minimize system costs. To achieve this purpose, first, RO system characteristics are simulated using a general regression neural network (GRNN) artificial neural network. Then, the controllable factors affecting the performance of the system are optimized by the application of a single-objective optimization model with the total operating cost minimization as an objective function. The proposed method is applied to an under-operation RO system used in a car manufacturer factory in Iran. Based on the results, the optimal values of the inflow, inlet pressure, and recovery rate were 10.4 m(3)/h, 7.4 x 10(5) Pa, and 60%, respectively. Accordingly, the total operational cost of the system will be $1,525.95. Moreover, by an appropriate operation, the system can continue to work for more than 5,000 h without the need for cleaning. (C) 2019 American Society of Civil Engineers.
机译:近年来,逆转渗透(RO)系统在工业过程中得到了高度利用。这些系统最重要的运营问题之一是膜污垢,这导致了高运营成本和环境影响。本研究的目的是优化RO系统的操作,以减少污垢,增加膜寿命,并最大限度地减少系统成本。为达到此目的,首先,使用一般回归神经网络(GRNN)人工神经网络进行模拟RO系统特征。然后,通过应用单个操作成本最小化作为目标函数,通过应用单目标优化模型来优化影响系统性能的可控因素。该方法应用于伊朗汽车制造商工厂的操作型RO系统。基于结果,流入,入口压力和回收率的最佳值分别为10.4M(3)/ h,7.4×10(5)pa和60%。因此,系统的总运营成本为1,525.95美元。此外,通过适当的操作,系统可以继续工作超过5,000小时,无需清洁。 (c)2019年美国土木工程师协会。

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