• 제목/요약/키워드: Ni-Co Alloy

검색결과 342건 처리시간 0.02초

염산(鹽酸)에 의한 CMSX-4 초내열합금(超耐熱合金)의 침출(浸出) (Leaching of CMSX-4 Superalloy in Hydrochloric Acid Solutions)

  • 김민석;이재천;김은영;유영수
    • 자원리싸이클링
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    • 제19권5호
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    • pp.25-30
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    • 2010
  • CMSX-4 초내열합금의 순환활용을 위한 습식제련기술 개발의 일환으로 영신에서의 니켈, 코벨트, 크롬, 알루미늄 등 주요 구성 금속성분들의 침출 특성을 조사하였다. 염산농도에 따른 합금시료 내 주요 금속성분들의 침출율은 염산농도가 높아짐에 따라 증가하였으나, 3 M 이상에서는 둔화되었다 염산농도 4 M, 고액비 10 g/L, 침출시간 60 분 조건에서 침출온도가 높아짐에 따라 침출율은 급격히 증가하였으며, $90^{\circ}C$에서 니켈 93.2%, 알루미늄 89.9%, 코발트 80.4%, 크롬 79.1%의 침출율을 나타내었다. 한편 침출 초기에는 니켈과 알루미늄의 침출속도가 빠르고 60 분 이후 급격히 둔화되는 형태를 보인 반면 코발트와 크롬은 침출이 느리고 60 분 이후의 감소율만 상대적으로 적었다. 120 분 경과 시 주요 금속원소들의 침출율은 모두 99% 수준에 도달하였다. 고액비가 높아지면 침출율은 서서히 감소하였으며, 니켈과 알루미늄이 코발트와 크롬에 비하여 침출율 감소가 적었다. 염산농도 4 M, 침출온도 $90^{\circ}C$, 침출시간 120 분의 조건에서 고액비 125 g/L 이하의 조건이 주요 금속 성분의 침출에 효과적임을 확인하였으며, 이는 CMSX-4 합금의 금속학적 조직구조와 관련이 있는 것으로 생각된다.

Evaluations of Si based ternary anode materials by using RF/DC magnetron sputtering for lithium ion batteries

  • 황창묵;박종완
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2010년도 제39회 하계학술대회 초록집
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    • pp.302-303
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    • 2010
  • Generally, the high energy lithium ion batteries depend intimately on the high capacity of electrode materials. For anode materials, the capacity of commercial graphite is unlike to increase much further due to its lower theoretical capacity of 372 mAhg-1. To improve upon graphite-based negative electrode materials for Li-ion rechargeable batteries, alternative anode materials with higher capacity are needed. Therefore, some metal anodes with high theoretic capacity, such as Si, Sn, Ge, Al, and Sb have been studied extensively. This work focuses on ternary Si-M1-M2 composite system, where M1 is Ge that alloys with Li, which has good cyclability and high specific capacity and M2 is Mo that does not alloy with Li. The Si shows the highest gravimetric capacity (up to 4000mAhg-1 for Li21Si5). Although Si is the most promising of the next generation anodes, it undergoes a large volume change during lithium insertion and extraction. It results in pulverization of the Si and loss of electrical contact between the Si and the current collector during the lithiation and delithiation. Thus, its capacity fades rapidly during cycling. Si thin film is more resistant to fracture than bulk Si because the film is firmly attached to the substrate. Thus, Si film could achieve good cycleability as well as high capacity. To improve the cycle performance of Si, Suzuki et al. prepared two components active (Si)-active(Sn, like Ge) elements film by vacuum deposition, where Sn particles dispersed homogeneously in the Si matrix. This film showed excellent rate capability than pure Si thin film. In this work, second element, Ge shows also high capacity (about 2500mAhg-1 for Li21Ge5) and has good cyclability although it undergoes a large volume change likewise Si. But only Ge does not use the anode due to its costs. Therefore, the electrode should be consisted of moderately Ge contents. Third element, Mo is an element that does not alloys with Li such as Co, Cr, Fe, Mn, Ni, V, Zr. In our previous research work, we have fabricated Si-Mo (active-inactive elements) composite negative electrodes by using RF/DC magnetron sputtering method. The electrodes showed excellent cycle characteristics. The Mo-silicide (inert matrix) dispersed homogeneously in the Si matrix and prevents the active material from aggregating. However, the thicker film than $3\;{\mu}m$ with high Mo contents showed poor cycling performance, which was attributed to the internal stress related to thickness. In order to deal with the large volume expansion of Si anode, great efforts were paid on material design. One of the effective ways is to find suitably three-elements (Si-Ge-Mo) contents. In this study, the Si based composites of 45~65 Si at.% and 23~43 Ge at.%, and 12~32 Mo at.% are evaluated the electrochemical characteristics and cycle performances as an anode. Results from six different compositions of Si-Ge-Mo are presented compared to only the Si and Ge negative electrodes.

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