Kinetic Studies of Cs<sup>+</sup> and Sr<sup>2+</sup> Ion Exchange Using Clinoptilolite in Static Columns and an Agitated Tubular Reactor (ATR)

Natural clinoptilolite was studied to assess its performance in removing caesium and strontium ions, using both static columns and an agitated tube reactor (ATR) for process intensification. Kinetic breakthrough curves were fitted using the Thomas and Modified Dose Response (MDR) models. In the stat...

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Main Authors: Muhammad Yusuf Prajitno, Mohamad Taufiqurrakhman, David Harbottle, Timothy N. Hunter
Format: Article
Language:English
Published: MDPI AG 2021-02-01
Series:ChemEngineering
Subjects:
Online Access:https://www.mdpi.com/2305-7084/5/1/9
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spelling doaj-ea40e930e7144f309ad0cf914c26fe9f2021-02-12T00:03:08ZengMDPI AGChemEngineering2305-70842021-02-0159910.3390/chemengineering5010009Kinetic Studies of Cs<sup>+</sup> and Sr<sup>2+</sup> Ion Exchange Using Clinoptilolite in Static Columns and an Agitated Tubular Reactor (ATR)Muhammad Yusuf Prajitno0Mohamad Taufiqurrakhman1David Harbottle2Timothy N. Hunter3School of Chemical and Process Engineering, University of Leeds, Leeds LS2 9JT, UKSchool of Mechanical Engineering, University of Leeds, Leeds LS2 9JT, UKSchool of Chemical and Process Engineering, University of Leeds, Leeds LS2 9JT, UKSchool of Chemical and Process Engineering, University of Leeds, Leeds LS2 9JT, UKNatural clinoptilolite was studied to assess its performance in removing caesium and strontium ions, using both static columns and an agitated tube reactor (ATR) for process intensification. Kinetic breakthrough curves were fitted using the Thomas and Modified Dose Response (MDR) models. In the static columns, the clinoptilolite adsorption capacity (<i>q<sub>e</sub></i>) for 200 ppm ion concentrations was found to be ~171 and 16 mg/g for caesium and strontium, respectively, highlighting the poor material ability to exchange strontium. Reducing the concentration of strontium to 100 ppm, however, led to a higher strontium <i>q<sub>e </sub></i>of ~48 mg/g (close to the maximum adsorption capacity). Conversely, halving the column residence time to 15 min decreased the <i>q<sub>e</sub></i> for 100 ppm strontium solutions to 13–14 mg/g. All the kinetic breakthrough data correlated well with the maximum adsorption capacities found in previous batch studies, where, in particular, the influence of concentration on the slow uptake kinetics of strontium was evidenced. For the ATR studies, two column lengths were investigated (of 25 and 34 cm) with the clinoptilolite embedded directly into the agitator bar. The 34 cm-length system significantly outperformed the static vertical columns, where the adsorption capacity and breakthrough time were enhanced by ~30%, which was assumed to be due to the heightened kinetics from shear mixing. Critically, the increase in performance was achieved with a relative process flow rate over twice that of the static columns.https://www.mdpi.com/2305-7084/5/1/9agitated tubular reactorstrontiumcaesiumclinoptiloliteion exchangeprocess intensification
collection DOAJ
language English
format Article
sources DOAJ
author Muhammad Yusuf Prajitno
Mohamad Taufiqurrakhman
David Harbottle
Timothy N. Hunter
spellingShingle Muhammad Yusuf Prajitno
Mohamad Taufiqurrakhman
David Harbottle
Timothy N. Hunter
Kinetic Studies of Cs<sup>+</sup> and Sr<sup>2+</sup> Ion Exchange Using Clinoptilolite in Static Columns and an Agitated Tubular Reactor (ATR)
ChemEngineering
agitated tubular reactor
strontium
caesium
clinoptilolite
ion exchange
process intensification
author_facet Muhammad Yusuf Prajitno
Mohamad Taufiqurrakhman
David Harbottle
Timothy N. Hunter
author_sort Muhammad Yusuf Prajitno
title Kinetic Studies of Cs<sup>+</sup> and Sr<sup>2+</sup> Ion Exchange Using Clinoptilolite in Static Columns and an Agitated Tubular Reactor (ATR)
title_short Kinetic Studies of Cs<sup>+</sup> and Sr<sup>2+</sup> Ion Exchange Using Clinoptilolite in Static Columns and an Agitated Tubular Reactor (ATR)
title_full Kinetic Studies of Cs<sup>+</sup> and Sr<sup>2+</sup> Ion Exchange Using Clinoptilolite in Static Columns and an Agitated Tubular Reactor (ATR)
title_fullStr Kinetic Studies of Cs<sup>+</sup> and Sr<sup>2+</sup> Ion Exchange Using Clinoptilolite in Static Columns and an Agitated Tubular Reactor (ATR)
title_full_unstemmed Kinetic Studies of Cs<sup>+</sup> and Sr<sup>2+</sup> Ion Exchange Using Clinoptilolite in Static Columns and an Agitated Tubular Reactor (ATR)
title_sort kinetic studies of cs<sup>+</sup> and sr<sup>2+</sup> ion exchange using clinoptilolite in static columns and an agitated tubular reactor (atr)
publisher MDPI AG
series ChemEngineering
issn 2305-7084
publishDate 2021-02-01
description Natural clinoptilolite was studied to assess its performance in removing caesium and strontium ions, using both static columns and an agitated tube reactor (ATR) for process intensification. Kinetic breakthrough curves were fitted using the Thomas and Modified Dose Response (MDR) models. In the static columns, the clinoptilolite adsorption capacity (<i>q<sub>e</sub></i>) for 200 ppm ion concentrations was found to be ~171 and 16 mg/g for caesium and strontium, respectively, highlighting the poor material ability to exchange strontium. Reducing the concentration of strontium to 100 ppm, however, led to a higher strontium <i>q<sub>e </sub></i>of ~48 mg/g (close to the maximum adsorption capacity). Conversely, halving the column residence time to 15 min decreased the <i>q<sub>e</sub></i> for 100 ppm strontium solutions to 13–14 mg/g. All the kinetic breakthrough data correlated well with the maximum adsorption capacities found in previous batch studies, where, in particular, the influence of concentration on the slow uptake kinetics of strontium was evidenced. For the ATR studies, two column lengths were investigated (of 25 and 34 cm) with the clinoptilolite embedded directly into the agitator bar. The 34 cm-length system significantly outperformed the static vertical columns, where the adsorption capacity and breakthrough time were enhanced by ~30%, which was assumed to be due to the heightened kinetics from shear mixing. Critically, the increase in performance was achieved with a relative process flow rate over twice that of the static columns.
topic agitated tubular reactor
strontium
caesium
clinoptilolite
ion exchange
process intensification
url https://www.mdpi.com/2305-7084/5/1/9
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