New Concept for the Study of the Fluid Dynamics of Lithium Extraction Using Calix[4]arene Derivatives in T-Type Microreactor Systems

Lithium extraction remains a challenge in the hydrometallurgy process due to its economic value and maldistribution sources. Employing calix[4]arene derivatives in solvent extraction techniques results in high selectivity and extraction capability, but a slow extraction rate. The slow kinetics of ba...

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Main Authors: Yehezkiel Steven Kurniawan, Ramachandra Rao Sathuluri, Keisuke Ohto, Wataru Iwasaki, Hidetaka Kawakita, Shintaro Morisada, Masaya Miyazaki, Jumina Jumina
Format: Article
Language:English
Published: MDPI AG 2021-05-01
Series:Separations
Subjects:
Online Access:https://www.mdpi.com/2297-8739/8/5/70
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spelling doaj-eaf43f52bc0c483fb57c0c253e5c1d612021-06-01T00:34:07ZengMDPI AGSeparations2297-87392021-05-018707010.3390/separations8050070New Concept for the Study of the Fluid Dynamics of Lithium Extraction Using Calix[4]arene Derivatives in T-Type Microreactor SystemsYehezkiel Steven Kurniawan0Ramachandra Rao Sathuluri1Keisuke Ohto2Wataru Iwasaki3Hidetaka Kawakita4Shintaro Morisada5Masaya Miyazaki6Jumina Jumina7Department of Chemistry and Applied Chemistry, Faculty of Science and Engineering, Saga University, 1-Honjo, Saga 840-8502, JapanDepartment of Chemistry and Applied Chemistry, Faculty of Science and Engineering, Saga University, 1-Honjo, Saga 840-8502, JapanDepartment of Chemistry and Applied Chemistry, Faculty of Science and Engineering, Saga University, 1-Honjo, Saga 840-8502, JapanSensing System Research Center, National Institute of Advanced Industrial Science and Technology, 807-1 Shuku, Tosu, Saga 841-0052, JapanDepartment of Chemistry and Applied Chemistry, Faculty of Science and Engineering, Saga University, 1-Honjo, Saga 840-8502, JapanDepartment of Chemistry and Applied Chemistry, Faculty of Science and Engineering, Saga University, 1-Honjo, Saga 840-8502, JapanHaKaL Inc., The Juhachi-Shinwa Bank Fukuoka Bldg. 5F, 6-27 NishiNakasu, Fukuoka 810-0002, JapanDepartment of Chemistry, Faculty of Mathematics and Natural Sciences, Universitas Gadjah Mada, Yogyakarta 55281, IndonesiaLithium extraction remains a challenge in the hydrometallurgy process due to its economic value and maldistribution sources. Employing calix[4]arene derivatives in solvent extraction techniques results in high selectivity and extraction capability, but a slow extraction rate. The slow kinetics of batch-wise extraction can be drastically accelerated by using a T-type microreactor system. Therefore, a combination of calix[4]arene and a microreactor system serves as an ideal platform for efficient lithium extraction. In this work, the fluid dynamics of lithium extraction using a monoacetic acid calix[4]arene derivative in a T-type microreactor system were studied. Increasing the O/A ratio increases the average length, surface area, and volume of the organic droplets, but decreases the specific surface area. In contrast, increasing the Reynolds number decreases the average length, surface area, and volume of the organic droplets, but increases the specific surface area. It was found that shorter diffusion distance, larger specific surface area, and faster vortex velocity were the factors that play the most pivotal roles in achieving great extraction rate enhancement in T-type microreactor systems compared to batch-wise systems. These findings represent an important new concept in the study of the fluid dynamics of lithium extraction using monoacetic acid calix[4]arene derivatives in T-type microreactor systems.https://www.mdpi.com/2297-8739/8/5/70fluid dynamiclithiumextractioncalix[4]areneT-type microreactorextraction rate
collection DOAJ
language English
format Article
sources DOAJ
author Yehezkiel Steven Kurniawan
Ramachandra Rao Sathuluri
Keisuke Ohto
Wataru Iwasaki
Hidetaka Kawakita
Shintaro Morisada
Masaya Miyazaki
Jumina Jumina
spellingShingle Yehezkiel Steven Kurniawan
Ramachandra Rao Sathuluri
Keisuke Ohto
Wataru Iwasaki
Hidetaka Kawakita
Shintaro Morisada
Masaya Miyazaki
Jumina Jumina
New Concept for the Study of the Fluid Dynamics of Lithium Extraction Using Calix[4]arene Derivatives in T-Type Microreactor Systems
Separations
fluid dynamic
lithium
extraction
calix[4]arene
T-type microreactor
extraction rate
author_facet Yehezkiel Steven Kurniawan
Ramachandra Rao Sathuluri
Keisuke Ohto
Wataru Iwasaki
Hidetaka Kawakita
Shintaro Morisada
Masaya Miyazaki
Jumina Jumina
author_sort Yehezkiel Steven Kurniawan
title New Concept for the Study of the Fluid Dynamics of Lithium Extraction Using Calix[4]arene Derivatives in T-Type Microreactor Systems
title_short New Concept for the Study of the Fluid Dynamics of Lithium Extraction Using Calix[4]arene Derivatives in T-Type Microreactor Systems
title_full New Concept for the Study of the Fluid Dynamics of Lithium Extraction Using Calix[4]arene Derivatives in T-Type Microreactor Systems
title_fullStr New Concept for the Study of the Fluid Dynamics of Lithium Extraction Using Calix[4]arene Derivatives in T-Type Microreactor Systems
title_full_unstemmed New Concept for the Study of the Fluid Dynamics of Lithium Extraction Using Calix[4]arene Derivatives in T-Type Microreactor Systems
title_sort new concept for the study of the fluid dynamics of lithium extraction using calix[4]arene derivatives in t-type microreactor systems
publisher MDPI AG
series Separations
issn 2297-8739
publishDate 2021-05-01
description Lithium extraction remains a challenge in the hydrometallurgy process due to its economic value and maldistribution sources. Employing calix[4]arene derivatives in solvent extraction techniques results in high selectivity and extraction capability, but a slow extraction rate. The slow kinetics of batch-wise extraction can be drastically accelerated by using a T-type microreactor system. Therefore, a combination of calix[4]arene and a microreactor system serves as an ideal platform for efficient lithium extraction. In this work, the fluid dynamics of lithium extraction using a monoacetic acid calix[4]arene derivative in a T-type microreactor system were studied. Increasing the O/A ratio increases the average length, surface area, and volume of the organic droplets, but decreases the specific surface area. In contrast, increasing the Reynolds number decreases the average length, surface area, and volume of the organic droplets, but increases the specific surface area. It was found that shorter diffusion distance, larger specific surface area, and faster vortex velocity were the factors that play the most pivotal roles in achieving great extraction rate enhancement in T-type microreactor systems compared to batch-wise systems. These findings represent an important new concept in the study of the fluid dynamics of lithium extraction using monoacetic acid calix[4]arene derivatives in T-type microreactor systems.
topic fluid dynamic
lithium
extraction
calix[4]arene
T-type microreactor
extraction rate
url https://www.mdpi.com/2297-8739/8/5/70
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