• Title/Summary/Keyword: 폐전지

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Trend on the Recycling Technologies for Spent Batteries by the Patent and Paper Analysis (특허(特許)와 논문(論文)으로 본 폐전지 재활용(再活用) 기술(技術) 동향(動向))

  • Shin, Shun-Myung;Joo, Sung-Ho;Kim, Soo-Kyung;Cho, Young-Ju;Cho, Bong-Gyoo
    • Resources Recycling
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    • v.21 no.4
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    • pp.16-25
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    • 2012
  • There are several kinds of batteries such as zinc-air battery, lithium battery, Manganese dry battery, silver oxide battery, sodium-sulphur battery, lead acid battery, metal hydride secondary battery, nickel-cadmium battery, lithium ion battery, alkaline battery, etc. These days it has been widely studied for the recycling technologies of the used battery from view points of economy and efficiency. In this paper, patents and published papers on the recycling technologies of the used battery were analyzed. The range of search was limited in the open patents of USA (US), European Union (EU), Japan (JP), Korea (KR) and SCI journal articles from 1972 to 2011. Patents and journal articles were collected using key-words searching and filtered by filtering criteria. The trends of the patents and journal articles were analyzed by the years, countries, companies, and technologies.

A Study on the Separation of Mercury from Spent Mercury Batteries (단추형 폐수은 전지로부터 수은 분리에 관한 연구)

  • 손정수;박경호
    • Resources Recycling
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    • v.3 no.1
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    • pp.32-37
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    • 1994
  • Mercury in spent button type batteries can be separated and recovered with vacuum distillation method. It was found that mercury in the battery began to distill at $150^{\circ}C$ and organic substanced like a packing material was decomposed at$ 300^{\circ}C$. More than 99.9% of mercury contained in the battery was distiled and separated at about $250^{\circ}C$ and 20 torr with 8 hours' reaction time. The dissolution tests of the residue after distillation showed that mercury concentration in the solution were lower than 5 ppb and this values satisfied the environ-mental condition. Also as the furnace heating rate was above $15^{\circ}C$/min, it was found that the spent battery was destroyed because of increased pressure in the battery inside.

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Overview on Pyrometallurgical Recycling Process of Spent Lithium-ion Battery (건식 공정을 통한 리튬이차전지의 재활용 연구 동향)

  • Park, Eunmi;Han, Chulwoong;Son, Seong Ho;Lee, Man Seung;Kim, Yong Hwan
    • Resources Recycling
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    • v.31 no.3
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    • pp.27-39
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    • 2022
  • The global demand for lithium-ion batteries (LIBs) has been continuously increasing since the 1990s along with the growth of the portable electronic device market. Of late, the rapid growth of the electric vehicle market has further accelerated the demand for LIBs. The demand for the LIBs is expected to surpass the supply of lithium from natural resources in the near future, posing a risk to the global lithium supply chain. Moreover, the continuous accumulation of end-of-life LIBs is expected to cause serious environmental problems. To solve these problems, recycling the spent LIBs must be viewed as a critical technological challenge that must be urgently addressed. In this study, recycling LIBs using pyrometallurgical processes and post-processes for efficient lithium recovery are briefly reviewed along with the major accomplishments in the field and current challenges.

Lithium Ion Battery Recycling Industry in South Korea (국내 리튬이온전지 재활용 산업현황)

  • Kyoungkeun Yoo
    • Resources Recycling
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    • v.32 no.1
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    • pp.13-20
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    • 2023
  • The objective of this article is to summarize the commercial lithium ion battery (LIB) recycling processes in Korea and to suggest new direction for LIB recycling. A representative LIB recycler, SungEel Hitech Co. has successfully operated the LIB recycling process for over 10 years, and new recycling processes were recently proposed or developed by many recycling companies and battery manufacturers. In the new recycling processes, lithium is recovered before nickel and cobalt due to the rapid rise in lithium prices, and metal sulfate solution as final product of recycling process can be supplied to manufacturers. The main problem that the new recycling process will face is impurities, which will mainly come from end-of-life electric vehicles or new additives in LIB, although the conventional processes must be improved for mass processing.

Analysis of Patents on the Recycling Technologies for Waste Batteries (폐전지 재활용 관련 기술의 특허 동향분석)

  • Kang Tae-Won;Jeong Jinki;Lee Jae-Chun;Sohn Jeong-Soo;Kang Kyung-Seok
    • Resources Recycling
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    • v.14 no.6 s.68
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    • pp.44-59
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    • 2005
  • In this paper the world wide patents on the recycling of used batteries were inspected. The trend and direction of on-going and future technologies on this matter were analyzed. The range of search was limited in the open patents and in DB of U.S.A.(USPTO, DLPHION), Japan(PAJ), Europe(EPO), and Korea(KIPRIS). For the search condition the keyword, battery, batteries, electric cell, patent, and recycling, and IPC classification were used. The total of 2,490 cases was found at the first search stage, then, through the 2 steps of filtering processes the total of 871 cases was selected for the final analysis. These 871 cases were classified by countries, companies, and technologies between the year 1971 and the you 2000.

Synthesis of SiC from the Wire Cutting Slurry of Silicon Wafer and Graphite Rod of Spent Zinc-Carbon Battery (폐 반도체 슬러리 및 폐 망간전지 흑연봉으로부터 탄화규소 합성)

  • Sohn Yong-Un;Chung In-Wha;Sohn Jeong-Soo;Kim Byoung-Gyu
    • Resources Recycling
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    • v.12 no.3
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    • pp.25-30
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    • 2003
  • The synthesis of SiC used for the parts of the gas turbine and the heat exchanger, was carried out. In this study, wire cutting slurry of silicon wafer and the graphite rod of spent zinc-carbon battery were applied to the starting materials for the synthesis. The powders of Si or Si+SiC were obtained from the waste material by filtration, gravity separation and magnetic separation. Graphite powder was produced by dismantling, grinding and gravity separation from spent zinc-carbon battery. The synthesis of SiC could be completed from the mixture powders of Si and C or Si+SiC and C at the condition of equivalent ratio of Si and C, atmosphere of Ar or vacuum, temperature of above 1$600^{\circ}C$ and 2 hours reactions. The purity of synthesized Si-C was above 99%.

Optimum Conditions of Dismantlement for Recovery of Valuables from Spent Lithium Primary Batteries (폐일차리튬전지로부터 유가금속을 회수하기 위한 해체공정의 최적화)

  • Yoo, Koungkeun;Kim, Hong-in;Sohn, Jeong-Soo
    • Resources Recycling
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    • v.28 no.4
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    • pp.51-58
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    • 2019
  • Dismantlement of lithium primary batteries without explosion is required to recycle the lithium primary batteries which could be exploded by heating too much or crushing. In the present study, the optimum discharging condition was investigated to dismantle the batteries without explosion. When the batteries were discharged with $0.5kmol{\cdot}m^{-3}$ sulfuric acid, the reactivity of the batteries decreased after 4 days at $35^{\circ}C$ and after 1 day at $50^{\circ}C$, respectively. This result shows that higher temperature removed the high reactivity of the batteries. Because loss of metals recycled increases when the batteries are discharged only with the sulfuric acid, discharging process using acid solution and water was newly proposed. When the batteries were discharged with water during 24 hours after discharging with $0.5kmol{\cdot}m^{-3}$ sulfuric acid during 6 hours, the batteries discharged were dismantled without explosion. Because decrease in loss of metals was accomplished by new process, the recycling process of the batteries could become economic by the 2-step discharging process.

한국의 고온연료전지 개발 및 산업현황

  • Lee, Chung-Gon
    • Proceedings of the Korean Vacuum Society Conference
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    • 2013.08a
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    • pp.98.1-98.1
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    • 2013
  • 현재 상용화되어 있거나 상용으로 개발하는 연료전지시스템의 큰 특징은 작동온도로 구분할 수 있다. 저온형 연료전지는 낮은 작동온도로 운전이 용이하고 출력밀도가 높아 자동차용 및 가정용 등으로 사용되고 있는 반면, 작동온도가 높은 고온형 연료전지의 경우는 높은 발전효율과 고온 폐열의 이용 등의 목적으로 주로 전력사업용 연료전지로 개발되고 있다. 본 발표에서는 주로 발전용에 사용되고 있는 우리나라의 고온형 연료전지의 개발 이력 및 현재의 산업화 현황에 대해 정리하여 보고드리고자 한다.

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Study for Recovery Silicon and Tempered Glass from Waste PV Modules (태양전지(太陽電池) 폐(廢) 모듈로부터 실리콘 및 강화(彈化)유리 회수(回收)에 관(關)한 연구(硏究))

  • Kang, Suk-Min;Yoo, Sung-Yeol;Lee, Jin-A;Boo, Bong-Hyun;Ryu, Ho-Jin
    • Resources Recycling
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    • v.20 no.2
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    • pp.45-53
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    • 2011
  • We devised a procedure for the recovery of silicon and tempered glass from waste photovoltaic (PV) modules using optimized conditions. The tempered glass was recovered without any damage using organic solvents. The surface material is removed by applying an acid solution on the surface of the PV cell. Through our proposed method, we offer a much more efficient approach for recycling solar cells with a surfactant than the conventional method. This process, we obtained pure silicon with a yield of 90% by chemical treatment with the surfactant at room temperature for 18 min. The silicon yield was characterized using an inductively coupled plasma-atomic emission spectrometer.