• 제목/요약/키워드: lithium batteries

검색결과 1,040건 처리시간 0.023초

시계열 모델 기반의 계절성에 특화된 S-ARIMA 모델을 사용한 리튬이온 배터리의 노화 예측 및 분석 (Degradation Prediction and Analysis of Lithium-ion Battery using the S-ARIMA Model with Seasonality based on Time Series Models)

  • 김승우;이평연;권상욱;김종훈
    • 전력전자학회논문지
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    • 제27권4호
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    • pp.316-324
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    • 2022
  • This paper uses seasonal auto-regressive integrated moving average (S-ARIMA), which is efficient in seasonality between time-series models, to predict the degradation tendency for lithium-ion batteries and study a method for improving the predictive performance. The proposed method analyzes the degradation tendency and extracted factors through an electrical characteristic experiment of lithium-ion batteries, and verifies whether time-series data are suitable for the S-ARIMA model through several statistical analysis techniques. Finally, prediction of battery aging is performed through S-ARIMA, and performance of the model is verified through error comparison of predictions through mean absolute error.

PLR (Plastic Lithium Rechargeable) Batteries using Nanoscale Materials : A Convenient Source of Electrical Energy for the Future?$\dag$

  • G. Campet;N. Treuil;A. Poquet;S. J. Hwang;C. Labrugere;A. Deshayes;J. C. Frison;J. Portier;J. M. Reau;J. H. Choy
    • Bulletin of the Korean Chemical Society
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    • 제20권8호
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    • pp.885-892
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    • 1999
  • This communication describes the synthesis of : (i) non-toxic and low cost nanocrystalline electrode materials, which can be prepared advantageously at low temperature ; (ii) highly conductive electrolyte membranes formed by the nano-encapsulation within a poly(acrylonitrile)-based polymer matrix of a solution of LiPF6 in organic solvants. The performances of rechargeable PLR (Plastic Lithium Rechargeable) batteries using the above mentioned components are presented.

간결한 예측 모형에 기반한 납축전지의 정전류-정전압 충전시간 특성화 (CC-CV Charging Time Characteristics of Lead-Acid Batteries Based on Compact Estimation Model)

  • 한정견;신동화
    • 대한임베디드공학회논문지
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    • 제11권5호
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    • pp.305-312
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    • 2016
  • Modern embedded systems are typically operated by the rechargeable batteries in our daily life. Since charge of batteries is considered as an time consuming task, there have been extensive efforts to manage the charge time from the perspective of materials, circuits, and systems. Estimation of battery charge time is one of the essential information to design the charge circuitry. A compact macro model for the constant-current and constant-voltage charge protocol was recently introduced, which gives us a quick estimation of charge time with similar shape to the famous Peukert's law for discharge time estimation. The CC-CV charging protocol is widely used for Lithium-based batteries and Lead-acid batteries. In this paper, we characterize the lead-acid battery by measurement to extract the model coefficients, which was not covered by the previous studies. By our proposed model, the key coefficient Kcc results in 1.18-1.31, which is little bit higher than that of Lithium batteries. The accuracy of our model is within the range of ${\pm}10%$ error, which is compatible with the other studies such as Peukert's law.

Anodic Performances of Surface-Treated Natural Graphite for Lithium Ion Capacitors

  • Park, Chul Min;Jo, Yong Nam;Park, Jung Woo;Yu, Ji-Sang;Kim, Jeom-Soo;Choi, Jungkyu;Kim, Young-Jun
    • Bulletin of the Korean Chemical Society
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    • 제35권9호
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    • pp.2630-2634
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    • 2014
  • The surface of natural graphite was modified by the use of hydrogen peroxide and evaluated as an anode material for lithium ion capacitors (LICs). The surface treatment was carried out under various ultrasonic conditions of 200, 300, and 400W, which were applied to a mixture of natural graphite and hydrogen peroxide solution for 1 h. While the bulk structure was maintained, the hexagonal symmetry and physical properties of natural graphite, such as BET surface area, tap density, and particle size, were affected by the surface treatment. FT-IR and XPS measurements confirmed the signature of C=O on the surface of graphite samples after treatment. Both the pristine and surface-treated graphites showed a similar reversible capacity of $370mAhg^{-1}$, and the coulombic efficiency of surface-treated graphite decreased with higher ultrasonic energies (89.1%, 89.0%, and 88.0% for 200, 300, and 400 W) comparing with pristine graphite (89.4%). The capacity retention of LICs was greatly improved with the treated natural graphite. The graphite treated under the ultrasonic energy of 300 W and pristine natural graphite showed capacity retention of 77.5% and 42.9%, implying that the surface treatment was an effective method for the improvement of natural graphite as an anode material for LICs.

리튬-청정 에너지 기술의 핵심금속: 1차 및 2차 자원으로부터 리튬 확보를 위한 도전과 기회에 대한 종합적 고찰 (Lithium - A Critical Metal for Clean Energy Technologies: A Comprehensive Review on Challenges and Opportunities for Securing Lithium from Primary and Secondary Resources)

  • ;김민석;이찬기;정경우;이재천
    • 자원리싸이클링
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    • 제28권5호
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    • pp.3-18
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    • 2019
  • 청정에너지에 대한 수요가 증가함에 따라 리튬이온배터리의 소비가 꾸준히 늘어날 것으로 예상된다. 따라서 전세계적으로 리튬의 안정적 공급이 중요한 문제가 되고 있다. 저품위 광석, 점토, 해수 그리고 폐리튬이온배터리 등과 같은 다양한 자원으로부터 리튬의 회수를 위한 공정과 기술들이 개발되어져 왔지만, 대부분의 리튬은 간수와 스포듀민 광석으로부터 상업적으로 생산되고 있다. 특히, 휴대폰과 전기자동차(EVs)를 포함한 여러 분야에서 발생하고 있는 사용 후 리튬이온배터리에 대한 재활용 기술들의 상용화는 많은 잠재력을 가지고 있다. 본 고찰은 폐리튬이온배터리에 대하여 새롭게 개발된 리튬 회수 공정과 더불어 광물과 간수를 이용하기 위한 상용공정 및 최신 기술들을 소개한다. 아울러 미래의 리튬 공급이 기술적인 관점에서 논의된다. 저품위 광석으로부터 리튬 회수를 위하여 개발되고 있는 최신공정들은 주로 건식+습식 제련에 기반을 둔 접근방법에 초점을 두고 있으며, 단지 몇몇 방법들만이 안정화 되었다. 리튬이온배터리의 소비(현재 생산되는 리튬의 56%)에 비교하여 리튬의 낮은 재활용율(1% 미만) 때문에 2차 자원의 처리는 굉장한 기회로서 앞을 내다보는 것일 수 있다. 또한 탄소경제, 환경과 에너지에 대한 우려를 생각해 볼 때, 습식제련공정이 이러한 이슈를 해결할 수 있을 것이다.

NCM계 리튬이온 배터리 양극재의 수소환원 거동 (Hydrogen Reduction Behavior of NCM-based Lithium-ion Battery Cathode Materials)

  • 이소영;이소연;이대현;손호상
    • 한국분말재료학회지
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    • 제31권2호
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    • pp.163-168
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    • 2024
  • As the demand for lithium-ion batteries for electric vehicles is increasing, it is important to recover valuable metals from waste lithium-ion batteries. In this study, the effects of gas flow rate and hydrogen partial pressure on hydrogen reduction of NCM-based lithium-ion battery cathode materials were investigated. As the gas flow rate and hydrogen partial pressure increased, the weight loss rate increased significantly from the beginning of the reaction due to the reduction of NiO and CoO by hydrogen. At 700 ℃ and hydrogen partial pressure above 0.5 atm, Ni and Li2O were produced by hydrogen reduction. From the reduction product and Li recovery rate, the hydrogen reduction of NCM-based cathode materials was significantly affected by hydrogen partial pressure. The Li compounds recovered from the solution after water leaching of the reduction products were LiOH, LiOH·H2O, and Li2CO3, with about 0.02 wt% Al as an impurity.