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Application of breakthrough curve analysis and response surface methodology for optimization of a hybrid separation system consisting of fixed-bed column adsorption and dead-end depth filtration

机译:突破性曲线分析和响应面方法的应用,优化固定床柱吸附和死端深度过滤组成的混合分离系统

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摘要

This work investigates the performance and optimization of a hybrid process consisting of a fixed-bed adsorption (FBA) column and a dead-end filtration (DEF) cell for the removal of methylene blue (MB) from water. Granular activated carbon and cellulose acetate depth filter sheets were used as adsorbent and filter medium, respectively. Effects of four operation parameters (initial concentration, feed flowrate, bed length, and filter type) on the MB removal rate (RR) were investigated using breakthrough data analysis and response surface methodology. This RR (mass of MB removed per second) captures the removal capacity and separation rate, simultaneously. The maximum RR was found theoretically equal to 3.875 s(-1) at the optimized conditions of initial concentration = 39.86 mg/L, flowrate = 1.15 L/min, bed length = 29.95 cm, and filter type = OS100, and validated with the experimental data with 99% agreement. The performance of the hybrid process operating at the optimal operation conditions was found to be superior to those of the individual FBA column and DEF cell. After 100 s from the process commencement, the RR obtained with the hybrid process was about 64% higher than that obtained with the FBA column and 30% higher than that obtained with the DEF cell.
机译:该工作研究了由固定床吸附(FBA)柱和死端过滤(DEF)电池组成的混合过程的性能和优化,用于从水中除去亚甲基蓝(MB)。粒状活性炭和醋酸纤维素深度过滤片分别用作吸附剂和过滤介质。使用突破性数据分析和响应表面方法研究了四种操作参数(初始浓度,进料流量,床长和过滤器类型)对MB去除率(RR)的影响。该RR(每秒移除的MB质量)同时捕获去除容量和分离速率。在初始浓度= 39.86mg / l的优化条件下,最大RR在理论上等于3.875 s(-1),流量= 1.15 l / min,床长= 29.95cm,以及滤波器类型= OS100,并用达成99%的实验数据。发现在最佳操作条件下操作的混合过程的性能优于各个FBA柱和DEF细胞的性能。在从过程开始之后,用杂合过程获得的RR比用FBA柱获得的高度高约64%,比用DEF细胞获得的30%高30%。

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