• 제목/요약/키워드: Sodium-beta alumina batteries

검색결과 4건 처리시간 0.02초

평판형 나트륨 유황 전지의 초기 충방전시 방전전압 변화 (Changes of discharge voltage of plate-type sodium sulfur batteries in the early charge/discharge cycles)

  • 김성인;김헌태;최희락;임산수대;양기덕;범진형;김창삼
    • 한국결정성장학회지
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    • 제24권4호
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    • pp.164-168
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    • 2014
  • 나트륨 유황 전지는 $350^{\circ}C$ 이상의 고온에서 작동하는 대용량 전지로 에너지 저장 시스템에 주로 사용된다. 전지는 음극 액체 나트륨과 양극 액체 유황 그리고 고체 전해질 베타 알루미나(${\beta}^{{\prime}{\prime}}$-alumina)로 구성되어 있다. 이 전지는 초기충방전 사이클에서 상당한 전압변화를 보이기 때문에 전지의 안정화를 위해 컨디셔닝 과정이 필요하다. 실험 결과 전지 전압 변화의 주요한 원인 중의 하나가 액체 나트륨과 고체 전해질과의 접촉 면적이 변하기 때문인 것을 알았다.

The Effect of Lithia Addition on the Sodium Ion Conductivity of Vapor Phase Converted Na-β"-alumina/YSZ Solid Electrolytes

  • Sasidharanpillai, Arun;Kim, Hearan;Cho, Yebin;Kim, Dongyoung;Lee, Seungmi;Jung, Keeyoung;Lee, Younki
    • 전기화학회지
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    • 제25권4호
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    • pp.191-200
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    • 2022
  • Na-β"-Al2O3 has been widely employed as a solid electrolyte for high-temperature sodium (Na) beta-alumina batteries (NBBs) thanks to its superb thermal stability and high ionic conductivity. Recently, a vapor phase conversion (VPC) method has been newly introduced to fabricate thin Na-β"-Al2O3 electrolytes by converting α-Al2O3 into β"-Al2O3 in α-Al2O3/yttria-stabilized zirconia (YSZ) composites under Na+ and O2- dual percolation environments. One of the main challenges that need to be figured out is lowered conductivity due to the large volume fraction of the non-Na+-conducting YSZ. In this study, the effect of lithia addition in the β"-Al2O3 phase on the grain size and ionic conductivity of Na-β"-Al2O3/YSZ solid electrolytes have been investigated in order to enhance the conductivity of the electrolyte. The amount of pre-added lithia (Li2O) precursor as a phase stabilizer was varied at 0, 1, 2, 3, and 4 mol% against that of Al2O3. It turns out that ionic conductivity increases even with 1 mol% lithia addition and reaches 67 mS cm-1 at 350 ℃ of its maximum with 3 mol%, which is two times higher than that of the undoped composite.

금속알콕시이드로부터 $\beta$-Alumina의 생성 (Formation of Beta-Alumina from Metalkoxide)

  • 공용식;문종수;이서우
    • 한국세라믹학회지
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    • 제25권2호
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    • pp.136-142
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    • 1988
  • β-Al2O3, which is used for solid electrolyte membrances in sodium-sulfur batteries, was prepared by sol-gel process. Sodium-n-propoxide NaOC3H7 and aluminum-isopropoxide Al(OC3H7)3 were hydrolyzated in the solution at pH 3, pH 7, pH 9 and pH 11, respectively. The sol-gel processed samples were calcined at several temperature steps, respectively and analysed by thermal analyser(DT-TGA), infrared spectrum analyser and X-ray diffraction analyser. The gelling rate of solution at pH 7 was much higher than that of the solution at pH 3. Thermal exchanging behavior of the gels at pH 3 were similar to Na2O·Al2O3·6H2O and, above pH 7, were similar to Na2O·Al2O3·3H2O. When samples' composition ratio was 9.13 : 90.87 [NaOC3H7:Al(OC3H7)3] at pH 7, β-Al2O3 was formed at 1100℃.

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Fabrication of a Full-Scale Pilot Model of a Cost-Effective Sodium Nickel-Iron Chloride Battery Over 40 Ah

  • Lee, Dong-Geun;Ahn, Byeong-Min;Ahn, Cheol-Woo;Choi, Joon-Hwan;Lee, Dae-Han;Lim, Sung-Ki
    • Journal of Electrochemical Science and Technology
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    • 제12권4호
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    • pp.398-405
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    • 2021
  • To fabricate a full-scale pilot model of the cost-effective Na-(Ni,Fe)Cl2 cell, a Na-beta-alumina solid electrolyte (BASE) was developed by applying a one-step synthesis cum sintering process as an alternative to the conventional solid-state reaction process. Also, Fe metal powder, which is cheaper than Ni, was mixed with Ni metal powder, and was used for cathode material to reduce the cost of raw material. As a result, we then developed a prototype Na-(Ni,Fe)Cl2 cell. Consequently, the Ni content in the Na-(Ni,Fe)Cl2 cell is decreased to approximately (20 to 50) wt.%. The #1 prototype cell (dimensions: 34 mm × 34 mm × 235 mm) showed a cell capacity of 15.9 Ah, and 160.3 mAh g-1 (per the Ni-Fe composite), while the #2 prototype cell (dimensions: 50 mm × 50 mm × 335 mm) showed a cell capacity of 49.4 Ah, and 153.2 mAh g-1 at the 2nd cycle.