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首页> 外文期刊>Journal of Cleaner Production >Transport properties of mixed matrix membranes encompassing zeolitic imidazolate framework 8 (ZIF-8) nanofiller and 6FDA-durene polymer: Optimization of process variables for the separation of CO2 from CH4
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Transport properties of mixed matrix membranes encompassing zeolitic imidazolate framework 8 (ZIF-8) nanofiller and 6FDA-durene polymer: Optimization of process variables for the separation of CO2 from CH4

机译:包含咪唑沸石骨架8(ZIF-8)纳米填料和6FDA-二氢呋喃聚合物的混合基质膜的传输特性:从CH4分离CO2的工艺变量的优化

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摘要

In this work, the incorporation of ZIF-8 nanofiller for the improvement of the transport properties of 6FDA-durene membrane in CO2/CH4 separation is investigated. Central composite design (CCD) coupled with response surface methodology (RSM) were utilized for the optimization of the separation process variables over ZIF-8/6FDA-durene MMM in CO2/CH4 separation. Three models correlating the independent parameters including, pressure (3.5-12.5 bar), temperature (30-50 degrees C) and CO2 concentration (10 -90 vol%) with the responses including, CO2 permeability, CH4 permeability and CO2/CH4 selectivity were developed based on the experimental data. The optimum parameters for achieving the highest separation performance were obtained at pressure of 4.76 bar, temperature of 30 degrees C and CO2 concentration of 90 vol%, which resulted in CO2 permeability of 687.20 Barrer, CH4 permeability of 71.03 Barrer and CO2/CH4 selectivity of 8.92. The deviation of the corresponding experimental data was found to be in an acceptable range, confirming the suitability of RSM for predicting the membrane performance and consequently optimizing the separation process variables. (C) 2017 Elsevier Ltd. All rights reserved.
机译:在这项工作中,研究了ZIF-8纳米填料的引入,以改善6FDA-二氢呋喃膜在CO2 / CH4分离中的传输性能。使用中央复合设计(CCD)和响应表面方法(RSM)来优化CO2 / CH4分离中ZIF-8 / 6FDA-durene MMM的分离工艺变量。三种模型将包括压力(3.5-12.5 bar),温度(30-50摄氏度)和CO2浓度(10 -90 vol%)的独立参数与包括CO2渗透率,CH4渗透率和CO2 / CH4选择性在内的响应相关联根据实验数据进行开发。在4.76 bar的压力,30摄氏度的温度和90%的CO2浓度下获得了实现最高分离性能的最佳参数,这导致CO2渗透率687.20 Barrer,CH4渗透率71.03 Barrer和CO2 / CH4选择性。 8.92。发现相应实验数据的偏差在可接受的范围内,证实了RSM适用于预测膜性能并因此优化了分离过程变量。 (C)2017 Elsevier Ltd.保留所有权利。

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