Direct recycling of carbon black and graphite from an aqueous anode slurry of lithium-ion batteries by centrifugal fractionation

Centrifugation is a promising method for direct recycling of lithium-ion battery materials from an aqueous slurry. The present work investigates the continuous fractionation of an aqueous anode slurry into the active material graphite and the conductive carbon black in a decanter centrifuge. To eval...

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Main Authors: Tolga Yildiz, Patrick Wiechers, Hermann Nirschl, Marco Gleiß
Format: Article
Language:English
Published: Elsevier 2024-01-01
Series:Next Energy
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2949821X23000819
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author Tolga Yildiz
Patrick Wiechers
Hermann Nirschl
Marco Gleiß
author_facet Tolga Yildiz
Patrick Wiechers
Hermann Nirschl
Marco Gleiß
author_sort Tolga Yildiz
collection DOAJ
description Centrifugation is a promising method for direct recycling of lithium-ion battery materials from an aqueous slurry. The present work investigates the continuous fractionation of an aqueous anode slurry into the active material graphite and the conductive carbon black in a decanter centrifuge. To evaluate the separation success, two analytical methods utilizing the different particle sizes and sedimentation velocities of the materials were developed and tested. Both methods can detect graphite separation efficiencies up to 90 % based on centrate samples. The detectability of carbon black in sediment samples is more sensitive for the sedimentation analysis, which can measure carbon black separation efficiencies down to 1 %, in contrast to the particle size analysis, allowing the detection of separation efficiencies down to 10 %. Both methods provide similar results in terms of assessing the separation process in the lab-scale decanter centrifuge. At a centrifugal acceleration of 352 g and a volume flow of 66 l/h, more than 90 % graphite can be separated with a low carbon black deposition between 10 % and 20 %. Thus, a high recovery of graphite and carbon black from an aqueous anode slurry by using a decanter centrifuge is basically possible.
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spelling doaj.art-d771d27df58340689567cc55e6a437c22024-03-29T05:52:21ZengElsevierNext Energy2949-821X2024-01-012100082Direct recycling of carbon black and graphite from an aqueous anode slurry of lithium-ion batteries by centrifugal fractionationTolga Yildiz0Patrick Wiechers1Hermann Nirschl2Marco Gleiß3Karlsruhe Institute of Technology (KIT), Institute for Mechanical Process Engineering and Mechanics - Process Machines, Straße am Forum 8, 76131 Karlsruhe, Germany; Corresponding author.Karlsruhe Institute of Technology (KIT), Institute for Mechanical Process Engineering and Mechanics - Process Machines, Straße am Forum 8, 76131 Karlsruhe, GermanyKarlsruhe Institute of Technology (KIT), Institute for Mechanical Process Engineering and Mechanics - Process Machines, Straße am Forum 8, 76131 Karlsruhe, GermanyKarlsruhe Institute of Technology (KIT), Institute for Mechanical Process Engineering and Mechanics - Process Machines, Straße am Forum 8, 76131 Karlsruhe, GermanyCentrifugation is a promising method for direct recycling of lithium-ion battery materials from an aqueous slurry. The present work investigates the continuous fractionation of an aqueous anode slurry into the active material graphite and the conductive carbon black in a decanter centrifuge. To evaluate the separation success, two analytical methods utilizing the different particle sizes and sedimentation velocities of the materials were developed and tested. Both methods can detect graphite separation efficiencies up to 90 % based on centrate samples. The detectability of carbon black in sediment samples is more sensitive for the sedimentation analysis, which can measure carbon black separation efficiencies down to 1 %, in contrast to the particle size analysis, allowing the detection of separation efficiencies down to 10 %. Both methods provide similar results in terms of assessing the separation process in the lab-scale decanter centrifuge. At a centrifugal acceleration of 352 g and a volume flow of 66 l/h, more than 90 % graphite can be separated with a low carbon black deposition between 10 % and 20 %. Thus, a high recovery of graphite and carbon black from an aqueous anode slurry by using a decanter centrifuge is basically possible.http://www.sciencedirect.com/science/article/pii/S2949821X23000819Direct battery recyclingDecanter centrifugeGraphiteCarbon blackParticle size analysisSedimentation analysis
spellingShingle Tolga Yildiz
Patrick Wiechers
Hermann Nirschl
Marco Gleiß
Direct recycling of carbon black and graphite from an aqueous anode slurry of lithium-ion batteries by centrifugal fractionation
Next Energy
Direct battery recycling
Decanter centrifuge
Graphite
Carbon black
Particle size analysis
Sedimentation analysis
title Direct recycling of carbon black and graphite from an aqueous anode slurry of lithium-ion batteries by centrifugal fractionation
title_full Direct recycling of carbon black and graphite from an aqueous anode slurry of lithium-ion batteries by centrifugal fractionation
title_fullStr Direct recycling of carbon black and graphite from an aqueous anode slurry of lithium-ion batteries by centrifugal fractionation
title_full_unstemmed Direct recycling of carbon black and graphite from an aqueous anode slurry of lithium-ion batteries by centrifugal fractionation
title_short Direct recycling of carbon black and graphite from an aqueous anode slurry of lithium-ion batteries by centrifugal fractionation
title_sort direct recycling of carbon black and graphite from an aqueous anode slurry of lithium ion batteries by centrifugal fractionation
topic Direct battery recycling
Decanter centrifuge
Graphite
Carbon black
Particle size analysis
Sedimentation analysis
url http://www.sciencedirect.com/science/article/pii/S2949821X23000819
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