• 제목/요약/키워드: Solid oxide

검색결과 1,201건 처리시간 0.03초

5kW급 고체 산화물 연료전지 열관리 계통 LQR 상태 궤환 제어기 설계 (Design of LQR Controller for Thermal Management System of 5kW Solid Oxide Fuel Cell)

  • 정진희;한재영;성용욱;유상석
    • 대한기계학회논문집B
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    • 제39권6호
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    • pp.505-511
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    • 2015
  • 고체 산화물 연료전지는 $800{\sim}1000^{\circ}C$의 고온에서 작동한다. 고온 작동은 효율에 유리하지만 재료 요구 조건, 신뢰성, 열팽창 문제 등이 발생하여 온도 제어가 중요하다. 본 연구에서는 연료전지 시스템의 열관리를 위한 상태 공간 제어기를 설계하고 응답 특성을 확인하였다. 연료전지 스택과 열관리 핵심부품인 촉매연소기는 집중 용량법을 이용한 과도 응답 모델을 개발하였고, 구성품과 통합하여 정적 운전 특성을 확인하였다. 개발된 비선형 시스템을 정격 운전 조건에서 다중 입력과 출력이 가능한 상태 공간 식으로 선형화하였다. 부하에 따라 응답특성이 현저하게 달라지는 특성을 제어하기 위해 LQR 제어기를 설계하여 궤환 제어 시스템의 온도를 제어하였다. 상태 궤환 제어기가 적어도 두 개의 제어 게인을 가지고 운전 영역에 따른 응답을 보여줄 때, 원하는 온도 응답을 나타냄을 확인하였다.

Characteristics of LaCo1-xNixO3-δ Coated on Ni/YSZ Anode using CH4 Fuel in Solid Oxide Fuel Cells

  • Kim, Jun Ho;Jang, Geun Young;Yun, Jeong Woo
    • Journal of Electrochemical Science and Technology
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    • 제11권4호
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    • pp.336-345
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    • 2020
  • Nickel-doped lanthanum cobalt oxide (LaCo1-xNixO3-δ, LCN) was investigated as an alternative anode material for solid oxide fuel cells. To improve its catalytic activity for steam methane reforming (SMR) reaction, Ni2+ was substituted into Co3+ lattice in LaCoO3. LCN anode, synthesized using the Pechini method, reacts with yttria-stabilized zirconia (YSZ) electrolyte at high temperatures to form an electrochemically inactive phase such as La2Zr2O7. To minimize the interlayer by-products, the LCN was coated via a double-tape casting method on the Ni/YSZ anode as a catalytic functional layer. By increasing the Ni doping amount, oxygen vacancies in the LCN increased and the cell performance improved. CH4 fuel decomposed to H2 and CO via SMR reaction in the LCN functional layer. Hence, the LCN-coated Ni/YSZ anode exhibited better cell performance than the Ni/YSZ anode under H2 and CH4 fuels. LCN with 12 mol% of Ni (LCN12)-modified Ni/YSZ anode showed excellent long-term stability under H2 and CH4 conditions.

Progress of High-k Dielectrics Applicable to SONOS-Type Nonvolatile Semiconductor Memories

  • Tang, Zhenjie;Liu, Zhiguo;Zhu, Xinhua
    • Transactions on Electrical and Electronic Materials
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    • 제11권4호
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    • pp.155-165
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    • 2010
  • As a promising candidate to replace the conventional floating gate flash memories, polysilicon-oxide-nitride-oxidesilicon (SONOS)-type nonvolatile semiconductor memories have been investigated widely in the past several years. SONOS-type memories have some advantages over the conventional floating gate flash memories, such as lower operating voltage, excellent endurance and compatibility with standard complementary metal-oxide-semiconductor (CMOS) technology. However, their operating speed and date retention characteristics are still the bottlenecks to limit the applications of SONOS-type memories. Recently, various approaches have been used to make a trade-off between the operating speed and the date retention characteristics. Application of high-k dielectrics to SONOS-type memories is a predominant route. This article provides the state-of-the-art research progress of high-k dielectrics applicable to SONOS-type nonvolatile semiconductor memories. It begins with a short description of working mechanism of SONOS-type memories, and then deals with the materials' requirements of high-k dielectrics used for SONOS-type memories. In the following section, the microstructures of high-k dielectrics used as tunneling layers, charge trapping layers and blocking layers in SONOS-type memories, and their impacts on the memory behaviors are critically reviewed. The improvement of the memory characteristics by using multilayered structures, including multilayered tunneling layer or multilayered charge trapping layer are also discussed. Finally, this review is concluded with our perspectives towards the future researches on the high-k dielectrics applicable to SONOS-type nonvolatile semiconductor memories.

고성능 고체산화물 연료전지를 위한 이중층 전해질 전략 (A brief review of the bilayer electrolyte strategy to achieve high performance solid oxide fuel cells)

  • 박정화;김도엽;김경준;배경택;이강택
    • 세라미스트
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    • 제23권2호
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    • pp.184-199
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    • 2020
  • The solid oxide fuel cells (SOFCs) are the one of the most promising energy conversion devices which can directly convert chemical energy into electric power with high efficiency and low emission. The lowering operating temperature below 800 ℃ has been considered as the mostly considerable research and development for commercialization. The major issue is to maintain reasonably high performance of SOFCs at reduced temperatures due to increment of polarization resistance of electrodes and electrolyte. Thus, the alternative materials with high catalytic activities and fast oxygen ion conductivity are required. For recent advances in electrolyte materials and technology, newly designed, highly conductive electrolyte materials and structural engineering of them provide a new path for further reduction in ohmic polarization resistance from electrolytes. Here, a powerful strategy of the bilayer concept with various oxide electrolytes of SOFCs are briefly reviewed. These recent developments also highlight the need for electrolytes with greater conductivity to achieve a high performance, thus providing a useful guidance for the rational design of cell structures for SOFCs. Moreover, cell design, materials compatibility, processing methods, are discussed, along with their role in determining cell performance. Results from state-of-the-art SOFCs are presented, and future prospects are discussed.

메탄연료사용을 위한 고체산화물 연료전지용 Reduced Graphene Oxide/Sr0.98Y0.08TiO3-δ 연료극 개발 (Development of Reduced Graphene Oxide/Sr0.98Y0.08TiO3-δ Anode for Methane Fuels in Solid Oxide Fuel Cells)

  • 김형순;김준호;모수인;박광선;윤정우
    • Korean Chemical Engineering Research
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    • 제61권2호
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    • pp.296-301
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    • 2023
  • 고온 운전이 가능한 고체산화물 연료전지의 최대의 장점은 내부개질을 통한 연료의 다양성에 있다. 하지만 기존의 Ni/SYZ전극은 탄소침적에 대한 단점을 가지고 있고, 이를 해결하기 위해 페로브스카이트 구조의 연료극 개발이 진행되었다. 본 연구에서는 페로브스카이트 대체 연료극의 낮은 전기전도도 및 촉매활성을 향상시키기 위해 rGO(reduced graphene oxide)를 Sr0.92Y0.08TiO3(SYT)와 혼합하여 연료극에 대한 성능 평가를 진행하였다. Ni/YSZ(yttria stabilized zirconia)와 SYT에 1wt%rGO를 첨가하여 연료극을 합성하였다. 고온 산화조건에서 전극 제조 후 rGO의 유무 확인은 XPS 및 라만 분석을 통해 확인하였다. rGO/SYT 연료극은 rGO 대비 H2에서 3배, CH4에서 6배의 매우 큰 성능 향상을 보여주었다.