• Title/Summary/Keyword: 리튬이온 원통형 이차전지

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Design LixV2O5 Cathode Structure for Effective Lithium Ion Intercalation (리튬 이차전지 양극재 LixV2O5의 효율적인 방전을 위한 구조 설계)

  • Park, Jun Kyu;Kim, Soo Il;Kim, Dongchoul
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.38 no.7
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    • pp.589-594
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    • 2014
  • Recently, higher capacity and energy density of lithium ion batteries are increasingly demanded for enhancing their performance in view of the rise in the commercial distribution of electric and hybrid vehicles. Computational analysis of a porous structure of vanadium pentoxide cathode was performed, employing a phase field model. The incipient model was designed as a spherical structure with cylindrical-shaped pores. Modifying the diameters and lengths of the pore cylinder and the number of pores, we considered different conditions for the porous vanadium pentoxide cathodes for analyzing their effect on the amount of lithium ion intercalated to them. Subsequently, we optimized the porous structure to contain the largest amount of intercalated lithium ion during discharge.

Effect of Center Pin in Free Fall Test for a Cylindrical Li-ion Cell (원형 리튬 전지의 센터 핀이 낙하 충격에 미치는 영향)

  • Kim, Simon;Lee, Young Shin
    • Transactions of the Korean Society of Mechanical Engineers A
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    • v.39 no.6
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    • pp.639-644
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    • 2015
  • A cylindrical secondary Li-ion cell is a device in which stored chemical energy is converted to electrical energy via an electrochemical reaction. These cells are widely used for applications that require high capacity and rate power, such as notebooks, power tools, and electric vehicles. The role of a center pin is to retain the channel for gas release, preventing blockage of the hollow of the jelly roll during a charge-discharge cycle, and to prevent an internal short circuit for tearing of separator under mechanical free fall. In this paper, two experiments are conducted with and without the center pin to experimentally verify the importance of the role of the center pin. The first experiment is a 50-cycle charge-discharge cycle test, and the second is a free fall test conducted according to the Underwriters Laboratories (UL) standards. Based on these experiments, we demonstrate that the center pin in a cylindrical cell is a very important component in terms of safety.

Effect of Electrolyte Amounts on Electrochemical Properties of Coin-Type Lithium-Ion Cells (액체전해액의 함량에 따른 리튬이온전지 코인셀의 전기화학적 특성 연구)

  • Yoon, Byeolhee;Han, Taeyeong;Kim, Seokwoo;Jin, Dahee;Lee, Yong min;Ryou, Myung-Hyun
    • Journal of the Korean Electrochemical Society
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    • v.21 no.2
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    • pp.39-46
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    • 2018
  • Many studies on the electrochemical performance of Li secondary batteries have been obtained using coin-type cells due to the ease of assembly, low cost and ensuring reproducibility. The coin-type cell consists of a case, a gasket, a spacer disk, and a wave spring. These structural features require a greater amount of liquid electrolyte to assemble than other types of cells such as laminated cells and cylindrical cells. Nevertheless, little research has been conducted on the effect of excess liquid electrolytes on the electrochemical performances of Li secondary batteries. In this study, we investigate the effect of different amounts of electrolyte on the coin-type cells. The amount of electrolytes is adjusted to 30 and $100mg\;mAh^{-1}$. Cycle performances at room temperature ($25^{\circ}C$) and high temperature ($60^{\circ}C$) and high voltage are performed to investigate the electrochemical properties of the different amount of electrolytes. In the case of the unit cell including the electrolyte of $30mg\;mAh^{-1}$, the discharging capacity retention characteristic is excellent in comparison with the case of $100mg\;mAh^{-1}$ under the high temperature and high voltage condition. The former shows a larger increase in internal resistance than the latter, confirming that the amount of electrolyte significantly influences the discharge capacity retention characteristics of the battery.