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用于工业含油废水处理的莫来石陶瓷膜:实验与神经网络建模。

Mullite ceramic membranes for industrial oily wastewater treatment: experimental and neural network modeling.

机构信息

Computer Aided Process Engineering (CAPE) Lab, Department of Chemical Engineering, Iran University of Science and Technology (lUST), Narmak, Tehran, Iran.

出版信息

Water Sci Technol. 2011;64(3):670-6. doi: 10.2166/wst.2011.655.

Abstract

In this paper, results of an experimental and modeling of separation of oil from industrial oily wastewaters (desalter unit effluent of Seraje, Ghom gas wells, Iran) with mullite ceramic membranes are presented. Mullite microfiltration symmetric membranes were synthesized from kaolin clay and alpha-alumina powder. The results show that the mullite ceramic membrane has a high total organic carbon and chemical oxygen demand rejection (94 and 89%, respectively), a low fouling resistance (30%) and a high final permeation flux (75 L/m2 h). Also, an artificial neural network, a predictive tool for tracking the inputs and outputs of a non-linear problem, is used to model the permeation flux decline during microfiltration of oily wastewater. The aim was to predict the permeation flux as a function of feed temperature, trans-membrane pressure, cross-flow velocity, oil concentration and filtration time, using a feed-forward neural network. Finally the structure of hidden layers and nodes in each layer with minimum error were reported leading to a 4-15 structure which demonstrated good agreement with the experimental measurements with an average error of less than 2%.

摘要

本文介绍了用莫来石陶瓷膜从工业含油废水中(伊朗 Seraje、Ghom 气井的脱盐装置流出物)分离油的实验和模拟结果。莫来石微滤对称膜由高岭土粘土和α-氧化铝粉末合成。结果表明,莫来石陶瓷膜对总有机碳和化学需氧量的截留率分别高达 94%和 89%,污染阻力低(30%),最终渗透通量高(75 L/m2 h)。此外,还使用人工神经网络(一种用于跟踪非线性问题输入和输出的预测工具)来模拟微滤含油废水过程中的渗透通量下降。目的是使用前馈神经网络,根据进料温度、跨膜压力、错流速度、油浓度和过滤时间来预测渗透通量。最后,报告了具有最小误差的每个层中的隐藏层和节点的结构,导致 4-15 结构,与实验测量结果吻合良好,平均误差小于 2%。

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