首页> 外文期刊>Journal of Colloid and Interface Science >Fixed-bed column performances of azure-II and auramine-O adsorption by Pinus eldarica stalks activated carbon and its composite with zno nanoparticles: Optimization by response surface methodology based on central composite design
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Fixed-bed column performances of azure-II and auramine-O adsorption by Pinus eldarica stalks activated carbon and its composite with zno nanoparticles: Optimization by response surface methodology based on central composite design

机译:用ZnO纳米粒子的Pinus Eldarica茎活性炭和ZnO纳米颗粒的固定床柱性能和ZnO纳米颗粒的复合材料:基于中央复合设计的响应面方法优化

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摘要

A continuous adsorption was used for removal of azure II (AZ II) and auramine 0 (AO) from aqueous solutions using Pinus eldarica stalks activated carbon (PES-AC) from aqueous solutions. The effects of initial dye concentration, flow rate, bed height and contact time on removal percentage of AO and AZ II were evaluated and optimized by central composite design (CCD) at optimum pH = 7.0. ZnO nanoparticles loaded on activated carbon were also used to remove AO and AZ II at pH = 7.0 and other optimum conditions. The breakthrough curves were obtained at different flow rates, initial dye concentrations and bed heights and the experimental data were fitted by Thomas, Adams-Bohart and Yoon-Nelson models. The main parameters of fixed-bed column including its adsorption capacity at breakthrough point (q(b)), adsorption capacity at saturation point (q(s)), mass transfer zone (MTZ), total removal percentage (R%), and empty bed contact time (EBCT) were calculated. The removal percentages calculated for AZ II and AO II were in the range of 51.6-61.1% and 40.6-61.6%, respectively. Bed adsorption capacity (N-0) and critical bed depth (Z(0)) were obtained by BDST model. 2017 Elsevier Inc. All rights reserved.
机译:使用连续吸附除去天青II(AZ II)的和使用松eldarica水溶液金胺O(AO)捕从水溶液活性炭(PES-AC)。初始染料浓度,流速,床高度和接触时间对AO和AZ II的去除百分比的影响进行评价,通过在最适pH = 7.0中心复合设计(CCD)进行了优化。装载在活性炭ZnO纳米颗粒也被用来去除AO和AZ II在pH = 7.0和其它的最佳条件。在不同的流速,初始染料浓度和床高度和实验数据获得的穿透曲线由Thomas,亚当斯-博哈特和润尼尔森模型拟合。固定床柱的主要参数,包括在突破点(Q(B)),在饱和点吸附容量(Q(S)),传质区(MTZ),总清除率(R%)其吸附容量,和空床接触时间(EBCT)进行了计算。为AZ II和AO II计算的去除百分比分别在51.6-61.1%和40.6-61.6%的范围内,。床吸附容量(N-0)和临界床深度(Z(0))被BDST模型获得。 2017年Elsevier Inc.保留所有权利。

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