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Experimental and mathematical modelling of Cr(Ⅲ) sorption in fixed-bed column using modified pine bark

机译:改性松树皮固定床塔中Cr(Ⅲ)吸附的实验和数学模型

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This work aims to analyse the dynamic behavior of a fixed-bed column to remove Cr(III) from a synthetic effluent The adsorbent was prepared by mercerizing pine bark (MPB). The dynamic study of the sorption process was based on the breakthrough curves obtained experimentally and modelled by a mechanistic approach, empirical models and multivariate regression analysis. The experimental results showed that the maximum fraction of saturated bed (FSB) was 0.65 when the inlet concentration was 100 mg/L, the height of the bed (H) 6.5 cm and the superficial velocity (u(0)) 14.4 x 10(-2) cm/s. The mechanistic model includes equilibrium parameters and the linear driving force (LDF) approach to express the intraparticular mass transport. The prediction of the experimental profiles was very acceptable, and the parameters used are valuable for the further design of fixed-bed column. The fitting through empirical models (Bohard-Adams, Thomas and Yoon-Nelson) are similar or even better than the mechanistic model. Aiming at the optimization of the column operation, a multivariate linear regression model (MRM) was developed based on a full factorial design. Thus, relationships between the variable responses FSB and Delta t(ads) (defined as the difference between the breakthrough time and exhaustion time) and two input variables (H and u(0)) were developed. This model was validated and used to predict the optimal operating conditions to maximize FSB (0.65) and minimize At Delta t(ads) (133 min). Finally, the regeneration of the adsorbent was assessed using nitric acid. The MPB adsorbent tested demonstrated a good capacity for uptaking Cr(III) from liquid effluents in column configurations. (C) 2018 Elsevier Ltd. All rights reserved.
机译:这项工作旨在分析固定床色谱柱从合成废水中去除Cr(III)的动力学行为。吸附剂是通过丝光松树皮(MPB)制备的。吸附过程的动力学研究基于实验获得的突破曲线,并通过机械方法,经验模型和多元回归分析进行建模。实验结果表明,当入口浓度为100 mg / L,床高(H)为6.5 cm,表层速度(u(0))为14.4 x 10(L)时,饱和床(FSB)的最大分数为0.65。 -2)厘米/秒。力学模型包括平衡参数和线性驱动力(LDF)方法来表达颗粒内质量传递。实验曲线的预测是非常可以接受的,并且所使用的参数对于固定床色谱柱的进一步设计非常有价值。通过经验模型(Bohard-Adams,Thomas和Yoon-Nelson)进行的拟合与机械模型相似,甚至更好。为了优化色谱柱操作,基于全因子设计开发了多元线性回归模型(MRM)。因此,建立了变量响应FSB和Delta t(ads)(定义为突破时间和消耗时间之间的差)与两个输入变量(H和u(0))之间的关系。该模型经过验证,可用于预测最佳工作条件,以最大化FSB(0.65)和最小化Δt(ads)(133分钟)。最后,使用硝酸评估吸附剂的再生。经测试的MPB吸附剂在柱配置中显示出从液体流出物中吸收Cr(III)的良好能力。 (C)2018 Elsevier Ltd.保留所有权利。

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