Battery recycling is a downstream process that deals with end-of-life batteries of different types and health conditions. Many established battery-recycling plants require a standardized presorting process to distinguish spent LIBs, as direct recycling reduces the efficiency of recovering valuable metals.
As shown in Table 3, hydrometallurgy is the most widely used recovery process. This depends on the original intention of battery recycling process design, which is to utilize and resynthesize waste LIB materials to achieve a circular economy.
The ambitious plan of the EU aims to stimulate innovations in battery recycling and achieve a recycling rate of 70 % for LIBs by 2030 . Let's briefly explore the most common recycling methods for LIBs and their benefits and drawbacks. The first method is mechanical recycling, often considered as a pre-processing step [, , , ].
DESs offer nearly 100 % metal leaching efficiency. DESs enhance binder dissolution processes. Combining DES with other techniques improves efficiency. This review article explores the evolving landscape of lithium-ion battery (LIB) recycling, emphasizing the critical role of innovative technologies in addressing battery waste challenges.
Hydrometallurgical battery recycling uses aqueous solutions or liquids to extract valuable metals from battery components. 34, 35 This method typically involves dissolving the battery materials in a suitable solvent, such as an acid or base, to leach the desired metals.
At present, there are some recycling methods for waste electrolyte, which fill the technical deficiencies to a certain extent and reduce the waste of resources . However, it is still necessary to accelerate the development of recycling technology for lithium-ion battery electrolyte.
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Get Price >>This review article explores the evolving landscape of lithium-ion battery (LIB) recycling, emphasizing the critical role of innovative technologies in addressing battery waste …
Get Price >>Eventually, this ruptures the steel casing, and potassium hydroxide leaks out in the battery compartment and, sometimes, over the circuitry inside the device. It can take …
Get Price >>Smelting involves two steps: (i) heating the material at a low temperature to evaporate the electrolyte and prevent burst (since intense heating could cause the battery to …
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Get Price >>The images of the pyrolysis of waste LIBs in the steel strip furnace, the pyrolysis residue, and the treatment device for pyrolysis gas and tar are shown in Fig. 3 A–D. Pyrolysis …
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Get Price >>The use of lithium-ion batteries in portable electronic devices and electric vehicles has become well-established, and battery demand is rapidly increasing annually. While technological innovations in electrode materials and battery performance have been pursued, the environmental threats and resource wastage posed by the resulting surge in used batteries …
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Get Price >>The stability of the residue was enhanced, and the environmental risk was reduced. By adding alkali (KOH/Ca(OH) 2, 20 %), hexafluorophosphate in the electrolyte was transformed into fluoride and phosphate in the residue, thereby reducing the device''s corrosion from fluorine-containing gas. This study provides a viable approach for managing the ...
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Get Price >>The invention provides a battery roasting treatment device, comprising: a roasting part, wherein the waste battery is conveyed and roasted through a closed type pipe; and a gas treatment unit for cooling and collecting dust of the gas generated in the baking unit. The invention can minimize the harmful gas components generated while roasting the battery, and has the advantages of …
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Get Price >>Lithium-ion batteries (LIBs) have been widely applied in portable devices and electric vehicles due to their good cycling performance, high energy density, and good safety (Chen et al., 2019, Xie and Lu, 2020) is reported that the production of LIBs exceeds 750 GWh in 2022 (Ministry of Industry and Information Technology of the People''s Republic of China, …
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Get Price >>[0011] In order to overcome the defect that nickel, cadmium and other substances in the oxygen-enriched incineration method finally generate oxides and cannot be recycled and processed, the purpose of the present invention is to provide an oxygen-deficient incineration device for treating waste power battery residues, which can Incineration and cracking of nickel, cadmium and …
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Get Price >>The images of the pyrolysis of waste LIBs in the steel strip furnace, the pyrolysis residue, and the treatment device for pyrolysis gas and tar are shown in Fig. 3 A–D. Pyrolysis gases and pyrolysis tars were detected using mass spectrometry. Fig. 3 I and J are the GC-MS analysis results of pyrolysis produced gas and pyrolysis tar, respectively. The composition of …
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