• 제목/요약/키워드: noble gas

검색결과 104건 처리시간 0.032초

접촉연소식 가스센서의 탄화수소계 가스 감응 특성 (Hydrocarbon Gas-sensing Properties of Catalytic Combustion Type Gas Sensor)

  • 이대식;이상문;남기홍;한상도;이덕동
    • 센서학회지
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    • 제8권4호
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    • pp.327-332
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    • 1999
  • 비표면적이 약 $200\;m^2/g$${\gamma}-Al_2O_3$를 합성하여 얻은 ${\gamma}-Al_2O_3$ 담체에 Pd, Pt와 같은 귀금속 촉매를 첨가하여 접촉연소식 가스감지소자를 제작하였다. 제작된 센서는 최적동작을 위한 인가전압 1.75 V에서 소모전력은 약 500 mV였고, 부탄, 메탄 및 프로판 각각 100 %LEL에 대해서 약 120 mV의 높은 감도 특성을 보였다. 제작된 센서는 탄화수소 가스 농도에 대한 선형성, 재현성, 그리고 상대 습도변화에 대해서 안정된 감도 특성을 보여 주었다. 그리고 약 100일 동안 부탄 가스에 대해서 안정된 센서 감도 특성을 보여 주었다.

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기상 반응용 스마트 용출 촉매 연구 동향 (A review of smart exsolution catalysts for the application of gas phase reactions)

  • 황루이;김형준;한정우
    • 세라미스트
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    • 제23권2호
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    • pp.211-230
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    • 2020
  • Perovskite-type oxides with the nominal composition of ABO3 can exsolve the B-site transition metal upon the controlled reduction. In this exsolution process, the transition metal emerges from the oxide lattice and migrates to the surface at which it forms catalytically active nanoparticles. The exsolved nanoparticles can recover back to the bulk lattice under oxidation treatment. This unique regeneration character by the redox treatment provides uniformly dispersed noble metal nanoparticles. Therefore, the conventional problem of traditional impregnated metal/support, i.e., sintering during reaction, can be effectively avoided by using the exsolution phenomenon. In this regard, the catalysts using the exsolution strategy have been well studied for a wide range of applications in energy conversion and storage devices such as solid oxide fuel cells and electrolysis cells (SOFCs and SOECs) because of its high thermal and chemical stability. On the other hand, although this exsolution strategy can also be applied to gas phase reaction catalysts, it has seldomly been reviewed. Here, we thus review recent applications of the exsolution catalysts to the gas phase reactions from the aspects of experimental measurements, where various functions of the exsolved particles were utilized. We also review non-perovskite type metal oxides that might have exolution phenomenon to provide more possibilities to develop higher efficient catalysts.

Optimization of the Pt Nanoparticle Size and Calcination Temperature for Enhanced Sensing Performance of Pt-Decorated In2O3 Nanorods

  • Choi, Seung-Bok;Lee, Jae Kyung;Lee, Woo Seok;Ko, Tae Gyung;Lee, Chongmu
    • Journal of the Korean Physical Society
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    • 제73권10호
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    • pp.1444-1451
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    • 2018
  • The surface-to-volume ratio of one-dimensional (1D) semiconductor metal-oxide sensors is an important factor for achieving good gas sensing properties because it offers a wide response area. To exploit this effect, in this study, we determined the optimal calcination temperature to maximize the specific surface area and thereby the sensitivity of the sensor. The $In_2O_3$ nanorods were synthesized by using vapor-liquid-solid growth of $In_2O_3$ powders and were decorated with the Pt nanoparticles by using a sol-gel method. Subsequently, the Pt nanoparticle-decorated $In_2O_3$ nanorods were calcined at different temperatures to determine the optimal calcination temperature. The $NO_2$ gas sensing properties of five different samples (pristine uncalcined $In_2O_3$ nanorods, Pt-decorated uncalcined $In_2O_3$ nanorods, and Pt-decorated $In_2O_3$ nanorods calcined at 400, 600, and $800^{\circ}C$) were determined and compared. The Pt-decorated $In_2O_3$ nanorods calcined at $600^{\circ}C$ showed the highest surface-to-volume ratio and the strongest response to $NO_2$ gas. Moreover, these nanorods showed the shortest response/recovery times toward $NO_2$. These enhanced sensing properties are attributed to a combination of increased surface-to-volume ratio (achieved through the optimal calcination) and increased electrical/chemical sensitization (provided by the noble-metal decoration).

고회분탄의 촤 산화 반응 특성 연구 (Char Oxidation Characteristics of High Ash Coal in Drop Tube Furnace)

  • 안기주;이병화;김상인;김만철;김승모;전충환
    • 대한기계학회논문집B
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    • 제37권4호
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    • pp.405-413
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    • 2013
  • 4 가지 탄종(Gunvor, Glencore, Noble, ECM)의 촤 산화반응 특성을 $900^{\circ}C$에서 $1300^{\circ}C$까지의 노내온도와 대기압 조건에서 DTF(drop tube furnace)를 이용하여 실험하였다. 촤 반응률은 FT-IR 장비로 측정한 CO, $CO_2$ 농도와 이색온도계로 측정한 입자온도를 통해 계산되었고 고회분탄의 활성화에너지(E)와 pre-exponential 상수(A)는 아레니우스 방정식을 기초로 계산되었다. 실험 결과는 석탄의 회분 함량이 늘어남에 따라, 입자온도와 면적반응성이 감소하였다. 이러한 결과는 회분의 큰 열용량, 회분의 기화잠열과 상대적으로 적은 고정탄소의 함량으로 인한 연소성 저하로 사료된다. 결과적으로 고회분탄은 높은 활성화 에너지(E)를 가진다.

연속식 용융아연도금 공정에서 단부 과도금 현상을 방지하기 위한 하향 대칭 분류유동 연구 (A Downwardly Deflected Symmetric Jet to prevent Edge Overcoating in Continuous Hot-Dip Galvanizing)

  • 안기장;정명균
    • 대한기계학회논문집B
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    • 제29권10호
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    • pp.1156-1162
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    • 2005
  • In this study, a noble method is proposed to prevent the edge overcoating (EOC) that may develop near the edge of the steel strip in the gas wiping process of continuous hot-dip galvanizing. In our past study (Trans. of the KSME (B), Vol. 27, No. 8, pp. $1105\~1113$), it was found that EOC is caused by the alternating vortices which are generated by the collision of two opposed jets in the region outside the steel strip. When the two opposed jets collide at an angle much less than $180^{o}$, non-alternating stable vortices are established symmetrically outside the steel strip, which lead to nearly uniform pressure on the strip surface. In order to deflect both jets downward by a certain angle, a cylinder with small diameter is installed tangentially to the exit of the lower lip of the two-dimensional jet. In order to find an optimum cylinder diameter, the three dimensional flow field is analysed numerically by using the commercial code, STAR-CD. And the coating thickness is calculated by using an integral analysis method to solve the boundary layer momentum equation. In order to compare the present noble method with the conventional baffle plate method to prevent the EOC, the flow field with a baffle plate is also calculated. The calculation results show that the tangentially installed cylinder at the bottom lip of the jet exit is more effective than the baffle plate to prevent EOC.

매우 작은 크기의 촉매 알갱이를 지지하기 위한 촉매 지지대용 탄소 나노/마이크로 코일의 합성 (Synthesis of the Carbon Nano/micro Coils Applicable to the Catalyst Support to Hold the Tiny Catalyst Grain)

  • 박찬호;김성훈
    • 한국진공학회지
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    • 제22권6호
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    • pp.277-284
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    • 2013
  • 아세틸렌과 수소기체를 원료기체로 하고 육불화황을 첨가기체로 하여 열화학 기상 증착하에서 탄소코일을 합성하였다. 이 때 산화실리콘 기판위의 니켈막을 탄소코일 성장의 촉매로 사용하였다. 성장된 탄소코일의 생성밀도, 형상, 기하구조 등을 수소 플라즈마 전처리의 유무에 따라 조사하였다. 상대적으로 짧은 시간(1분)의 수소 플라즈마 전처리는 탄소 마이크로 코일을 우세하게 성장시켰다. 긴 시간(30분)동안의 수소플라즈마 전처리는 탄소마이크로 성장 축을 따라 수많은 탄소 나노코일이 들어붙어 있는 특이한 구조를 보였다. 이 특이한 구조는 매우 작은 니켈 촉매의 알갱이를 효과적으로 지지할 수 있는 촉매 지지대로서의 역할을 할 수 있을 것으로 예견되었다.

광화학 환원방법을 이용한 Pt@TiO2 나노 복합체 합성 (Synthesis of Pt@TiO2 Nano-composite via Photochemical Reduction Method)

  • 김지영;변종민;김진우;김영도
    • 한국분말재료학회지
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    • 제21권2호
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    • pp.119-123
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    • 2014
  • Pt has been widely used as catalyst for fuel cell and exhausted gas clean systems due to its high catalytic activity. Recently, there have been researches on fabricating composite materials of Pt as a method of reducing the amount of Pt due to its high price. One of the approaches for saving Pt used as catalyst is a core shell structure consisting of Pt layer on the core of the non-noble metal. In this study, the synthesis of Pt shell was conducted on the surface of $TiO_2$ particle, a non-noble material, by applying ultraviolet (UV) irradiation. Anatase $TiO_2$ particles with the average size of 20~30 nm were immersed in the ethanol dissolved with Pt precursor of $H_2PtCl_6{\cdot}6H_2O$ and exposed to UV irradiation with the wavelength of 365 nm. It was confirmed that Pt nano-particles were formed on the surface of $TiO_2$ particles by photochemical reduction of Pt ion from the solution. The morphology of the synthesized Pt@$TiO_2$ nano-composite was examined by TEM (Transmission Electron Microscopy).

관형 Pt-라이닝 반응기를 이용한 가압 황산분해반응 (Decomposition of Sulfuric Acid at Pressurized Condition in a Pt-Lined Tubular Reactor)

  • 공경택;김홍곤
    • 한국수소및신에너지학회논문집
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    • 제22권1호
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    • pp.51-59
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    • 2011
  • Sulfur-Iodine (SI) cycle, which thermochemically splits water to hydrogen and oxygen through three stages of Bunsen reaction, HI decomposition, and $H_2SO_4$ decomposition, seems a promising process to produce hydrogen massively. Among them, the decomposition of $H_2SO_4$ ($H_2SO_4=H_2O+SO_2+1/2O_2$) requires high temperature heat over $800^{\circ}C$ such as the heat from concentrated solar energy or a very high temperature gas-cooled nuclear reactor. Because of harsh reaction conditions of high temperature and pressure with extremely corrosive reactants and products, there have been scarce and limited number of data reported on the pressurized $H_2SO_4$ decomposition. This work focuses whether the $H_2SO_4$ decomposition can occur at high pressure in a noble-metal reactor, which possibly resists corrosive acidic chemicals and possesses catalytic activity for the reaction. Decomposition reactions were conducted in a Pt-lined tubular reactor without any other catalytic species at conditions of $800^{\circ}C$ to $900^{\circ}C$ and 0 bar (ambient pressure) to 10 bar with 95 wt% $H_2SO_4$. The Pt-lined reactor was found to endure the corrosive pressurized condition, and its inner surface successfully carried out a catalytic role in decomposing $H_2SO_4$ to $SO_2$ and $O_2$. This preliminary result has proposed the availability of noble metal-lined reactors for the high temperature, high pressure sulfuric acid decomposition.

고압에서 작동하는 고체 추진제 연소속도 추정 방법 (Burning Rate Estimate Method of Solid Propellants at High Pressure Condition)

  • 최한영;이동선;성홍계;이원민;김은미
    • 한국추진공학회지
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    • 제26권1호
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    • pp.28-37
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    • 2022
  • 밀폐용기(Closed Bomb)시험을 통해 고압에서 작동하는 고체 추진제의 연소속도를 추정하는 방법을 연구하였다. CEA를 이용하여 연소가스의 조성을 계산였으며 밀폐용기 내부의 고온, 고압의 환경을 묘사하기 위해 Noble-Abel 상태방정식을 적용하였다. 분자의 부피를 고려한 분자 간의 충돌을 묘사하는 인자인 Covolume을 분자의 LJ potential을 이용하여 모델링하였다. 또한 추진제의 부피 변화율을 고려하기 위해 3차 형상함수(Cubic form function)를 적용하였다. 각 모델을 사용하여 고압용기에서 측정된 5개의 압력-시간 선도로부터 연소속도를 계산하고 이를 BRLCB 결과와 비교 검증하였다. 각 실험에서 약 6% 이내의 최대 오차를 갖는 연소속도를 추정함으로써 초고압 환경에서의 연소속도 추정 방법을 정립하였다.

Photobioreactor Engineering: Design and Performance

  • Suh, In-Soo;Lee, Choul-Gyun
    • Biotechnology and Bioprocess Engineering:BBE
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    • 제8권6호
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    • pp.313-321
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    • 2003
  • This review summarizes the recent advances in high-density algal cultures in the field of algal biotechnology. Photobioreactor engineering for economical and effective utilization of algae and its products has made impressive and promising progress. Bioprocess engineers have expedited the design and the operation of algal cultivation systems. Many of them in use today are open systems due to cost considerations, and closed photobioreactors have recently attracted a considerable attention for the production of valuable biochemicals or for special applications. For high-density cultures, the optimization of environmental factors in the photobioreactors have been explored, including light delivery, CO$_2$and O$_2$gas transfer, medium supply, mixing and temperature. It is expected that further advanced photobioreactor engineering will enable the commercialization of noble algal products within the next decade.