• 제목/요약/키워드: gas diffusion

검색결과 1,046건 처리시간 0.032초

대형싸이로에 있어서 훈증제의 수직적 침투력 (A Study on Gravity Penetration of Fumigants in the Jumbo Silo)

  • 하재규;오정우;유기열;김병호
    • 한국응용곤충학회지
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    • 제20권2호
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    • pp.103-106
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    • 1981
  • 이 시험은 수직싸이로에서 대두를 훈증소독하는 경우 훈증제별로 침투확산력을 조사할 목적으로 실시한것으로써 그 결과를 요약하면 다음과 같다. 1. 대두의 표면에 M.B를 단독으로 투약한 경우 M.B Gas의 침투확산속도는 대만히 빨라 투약후 4시간 이내에 싸이로 기부에 60mg/l 이상의 M.B Gas가 검출되었으며 10시간 이후로부터는 M.B Gas의 농도가 차 감소하는 경향이었다. 2. M.B Gas의 Carrier로 $CO_2$ Gas를 동시에 사용하였을 때는 M.B Gas의 침투확산속도가 M.B 단독 사용시보다 더욱 빨라져 투약후 1.5 시간이내에 싸이로 기부의 M.B Gas 농도는 70mg/l 이상을 나타내었다. 3. Phostoxin을 투약한 경우는 M.B를 투약한 경우 와는 반대로 침투확산력이 매우 미약하여 투약후 48시간동안 싸이로의 기부에서 10mg/l 이상의 농도를 검지할 수 없었다. 4. 소독효과를 조사하기 위해서 공시충으로 쌀바구미를 싸이로 기부에 삽입하였던바 M.B 및 $CO_2$구에서 는 완전한 살충효과를 얻었으나 Phostoxin 사용구에서는 대부분 생충으로 발견되었다.

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CFD를 활용한 밀폐공간 가스질식사고의 피해 영향 평가 (An Estimation of the Consequence Analysis for Asphyxiation Accident in Confined Space using C.F.D.)

  • 조완수;김의수
    • 한국안전학회지
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    • 제33권5호
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    • pp.28-34
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    • 2018
  • Recently, various engineering approaches have been widely used in the accident investigation field to identify the cause of the accident and to predict damage by accident. Computational analysis is the most commonly used method of accident investigation technique. This technique is mainly used to identify the mechanism of the accident generation and to determine the cause when it is difficult to reproduce the situation at the time of the accident or when it is impossible to perform a reproduction experiment. In this study, The computational fluid dynamics analysis for nitrogen asphyxiation accident generated by defect of building structural between diffusion outlet and cooling tower was performed to determine the inflow path of the suffocation gas, death possibility by concentration of suffocation gas and predicted the time of death due to the accident using 3D modeling and FLACS program. We can quantify diffusion concentration of asphyxiation gas and predict mechanism of death occurrence by accident and evaluate the consequence Analysis through this study. In the future, This method can be widely used in the field of gas safety by improving the reliability and validity of the analysis.

발전용 희박예혼합 가스터빈에서 연소모드변환 시기의 연소특성 해석 (Numerical Analysis of Combustion Characteristics during Mode Transfer Period in a Lean Premixed Gas Turbine for Power Generation)

  • 정재화;서석빈;김종진;차동진;안달홍
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2002년도 학술대회지
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    • pp.279-282
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    • 2002
  • Recently, gas turbines for power generation adopt multistage DLN(Dry Low NOx) type combustion, where diffusion combustion is applied at low load and, with increase in load, the combustion mode is changed to lean premixed combustion to reduce NOx emissive concentration. However, during the mode changeover from diffusion to premixed flame, unfavorable phenomena, such as flashback, high amplitude combustion oscillations, or thermal damage of combustor parts could frequently occur. In the present study, to apply for the analysis of such unfavorable phenomena, three-dimensional CFD investigations are carried out to compare the detailed flow characteristics and temperature distribution inside the gas turbine combustor before and after combustion mode changeover. The fuel considered here is pure methane gas. A standard $k-{\varepsilon}$ turbulence model with wall function and a P-N type radiation heat transfer model, have been utilized. To analyze the complex geometric effects of combustor parts on combustion characteristics, fuel nozzles, a swirl vane f3r fuel-air mixing, and cooling air holes on the combustor liner wall, are included in this simulation.

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체결압이 고분자연료전지 기체확산층의 표면성질에 미치는 영향 (Effect of Clamping Pressure on Surface Properties of Gas Diffusion Layer in PEFCs)

  • 안은진;박구곤;윤영기;박진수;이원용;김창수
    • 전기화학회지
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    • 제10권4호
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    • pp.306-310
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    • 2007
  • 고분자연료전지에 사용되는 다공성 매체인 기체확산층은 그 특성에 따라 원활한 기체의 확산과 물 배출을 결정지으며 그 결과 연료전지 성능과 내구성에까지 영향을 미친다. 최적의 물관리와 기체확산층 내에서의 이상(two phase) 유동이해를 위해서는 실제 체결 조건에서의 기체확산층의 성질을 아는 것이 중요하다. 이에 대해 물리적, 전기화학적, 기계적 성질을 알기 위한 실험 등이 수행되어져 왔다. 하지만 실제 스택의 체결 조건에서 기체확산층의 표면 화학적 변화에 대한 실험은 그다지 알려져 있지 않다. 본 연구에서는 단순한 체결 과정만으로도 기체확산층에 대한 물리화학적인 변화를 야기할 수 있음을 확인하였으며, 기체확산층을 구성하는 탄소 섬유 및 PTFE의 손상과 변형을 전자주사현미경으로 직접 관찰할 수 있었다. 관찰된 물리적 손상이 표면의 소수성 변화에 미치는 영향을 알아보기 위해 표면 원소성분 분석과 농도가 다른 에탄올 수용액 흡수량 측정을 수행하였다. 그 결과 체결압에 의해서 분리판의 rib 전단 및 아래에서 심한 파손이 일어나며, 탄소 섬유의 끊어짐 및 섬유 사이에 존재하는 탄소 파우더 역시 심하게 눌린 현상을 관찰할 수 있었다. 체결과정을 경험한 기체확산층에 대한 liquid uptake양을 확인한 결과, 표면 PTFE 함량의 상대적 감소가 기체확산층의 표면을 소수성에서 친수성으로 변화시켰음을 직접적으로 확인하였다.

외부 화학증착 공정에서의 가수분해반응으로 인한 실리카 생성에 대한 버크-슈만 해석 (Burke-Schumann analysis of silica formation by hydrolysis in an external chemical vapor deposition process)

  • 송창걸;황정호
    • 대한기계학회논문집B
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    • 제20권5호
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    • pp.1671-1678
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    • 1996
  • In external chemical vapor deposition processes including VAD and OVD the distribution of flame-synthesized silica particles is determined by heat and mass transfer limitations to particle formation. Combustion gas flow velocities are such that the particle diffusion time scale is longer than that of gas flow convection in the zone of particle formation. The consequence of these effects is that the particles formed tend to remain along straight smooth flow stream lines. Silica particles are formed due to oxidation and hydrolysis. In the hydrolysis, the particles are formed in diffuse bands and particle formation thus requires the diffusion of SiCl$\_$4/ toward CH$\_$4//O$\_$2/ combustion zone to react with H$\_$2/O diffusing away from these same zones on the torch face. The conversion kinetics of hydrolysis is fast compared to diffusion and the rate of conversion is thus diffusion-limited. In the language of combustion, the hydrolysis occurs as a Burke-Schumann process. In selected conditions, reaction zone shape and temperature distributions predicted by the Burke-Schumann analysis are introduced and compared with experimental data available. The calculated centerline temperatures inside the reaction zone agree well with the data, but the calculated values outside the reaction zone are a little higher than the data since the analysis does not consider diffusion in the axial direction and mixing of the combustion products with ambient air. The temperatures along the radial direction agree with the data near the centerline, but gradually diverge from the data as the distance is away from the centerline. This is caused by the convection in the radial direction, which is not considered in the analysis. Spatial distribution of silica particles are affected by convection and diffusion, resulting in a Gaussian form in the radial direction.

고분자전해질형연료전지의 가스 채널 최적화를 위한 수치적 연구 (II) - 가스 채널 치수가 온도와 액체포화 분포에 미치는 영향성 - (Numerical Study of Land/Channel Flow-Field Optimization in Polymer Electrolyte Fuel Cells (PEFCs) (II) - The Effects of Land/Channel Flow-Field on Temperature and Liquid Saturation Distributions -)

  • 주현철;남진무
    • 대한기계학회논문집B
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    • 제33권9호
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    • pp.688-698
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    • 2009
  • Using the multi-dimensional, multi-phase, nonisothermal Polymer Electrolyte Fuel Cell (PEFC) model presented in Part I, the effects of land/channel flow-field on temperature and liquid saturation distributions inside PEFCs are investigated in Part II. The focus is placed on exploring the coupled water transport and heat transfer phenomena within the nonisothermal and two-phase zone existing in the diffusion media (DM) of PEFCs. Numerical simulations are performed varying the land and channel widths and simulation results reveal that the water profile and temperature rise inside PEFCs are considerably altered by changing the land and channel widths, which indicates that oxygen supply and heat removal from the channel to the land regions and liquid water removal from the land toward the gas channels are key factors in determining the water and temperature distributions inside PEFCs. In addition, the adverse liquid saturation gradient along the thru-plane direction is predicted near the land regions by the numerical model, which is due to the vapor-phase diffusion driven by the temperature gradient in the nonisothermal two-phase DM where water evaporates at the hotter catalyst layer, diffuses as a vapor form and then condenses on the cooler land region. Therefore, the vapor phase diffusion exacerbates DM flooding near the land region, while it alleviates DM flooding near the gas channel.

유해 대기오염물질의 난류확산 수치모의에서 침적한과 부력항 추가에 따른 효과 (Addition Effect of the Deposition and Buoyancy Terms in Modeling Turbulence Diffusion of Hazardous Air Pollutants)

  • 원경미;이화운;지효은;김철희;송창근
    • 한국대기환경학회지
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    • 제22권1호
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    • pp.73-84
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    • 2006
  • Hazardous Air Pollutants (HAPs) are characterized by being relatively heavier and denser than that of ambient air due to the various reasons such as higher molecular weight, low temperature and other complicated chemical transformations (Witlox, 1994). In an effort to investigate transport and diffusion from instantaneous emission of heavy gas, Lagrangian Particle Dispersion Model (LPDM) coupled with the RAMS output was employed. Both deposition process and buoyancy term were added on the atmospheric diffusion equations of LPDM, and the locations and concentrations of dense gas particle released from instantaneous single point source (emitting initially for 10 minutes only) were analyzed. The result overall shows that adding deposition process and buoyancy terms on the diffusion equation of LPDM has very small but detectable effect on the vertical and horizontal distribution of Lagrangian particles that especially transported for a fairly long traveling time. Also the slumping of dense gas can be found to be ignored horizontally compared to the advection by the horizontal wind suggesting that it was essential to couple the Lagrangian particle dispersion model coupled with the RAMS model in order to explain the dispersion of HAPs more accurately. However, during the initial time of instantaneous emission, buoyancy term play an important role on the vertical locations of dense particles for near surface atmosphere and around source area, indicating the importance of densities of HAPs in the beginning stage or short duration for the risk assessment of HAPs or management of heavy vapors during the explosive accidents.

기체확산층 압축률과 상대습도가 고분자전해질 연료전지 성능에 미치는 영향 (Effect of Gas Diffusion Layer Compression and Inlet Relative Humidity on PEMFC Performance)

  • 김준섭;김준범
    • 공업화학
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    • 제32권1호
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    • pp.68-74
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    • 2021
  • 고분자전해질 연료전지 성능에서 기체확산층 압축률은 계면 접촉 저항과 전극으로의 반응물 전달 및 전극 내 수분 포화도에 영향을 주는 중요한 변수이다. 본 연구에서는 국내 상용 제품인 JNT20-A3를 이용하여 기체확산층 압축률에 대한 연료전지의 성능 평가를 수행하였다. 전극면적 25 ㎠ 단위 전지를 이용하여 상대습도 조건과 압축률에 대한 전기화학 임피던스 분광법과 분극 곡선을 측정하였다. 기체확산층을 18.6%에서 38.1%으로 압축시켰을 때 상대습도 100, 25% 조건에서 ohmic 저항이 각각 8, 30 mΩ·㎠이 감소하여 기체확산층 압축률이 증가할수록 접촉 저항이 감소하는 것과 동시에 막의 수화도가 증가하는 것을 확인하였다. 상대습도 조건에 대한 ohmic 저항의 변화 경향을 통하여, 압축률을 증가시켰을 때 기체확산층의 기공이 감소하여 공기극에서의 물 역확산과 전해질 막의 수화도가 증가하는 것을 확인하였다.

홈노즐을 이용한 정전분무 확산 연소 특성에 관한 연구 (Characteristics of the electrospraying combustion using grooved nozzle)

  • 김우진;김경태;김상수
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2007년도 춘계학술대회B
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    • pp.2366-2371
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    • 2007
  • Spray combustion characteristics of a conducting fuel electrospray have been studied for clean combustion technology. The multiplexing system which can retain the characteristics of the cone-jet mode is inevitable for the electrospray application. Charged micro droplets can be obtained in almost uniform size during operating the electrospray in the cone-jet mode. This experiment device set up the multiplexed grooved nozzle system with the extractor. Using the grooved nozzle, the stable cone-jet mode can be achieved at the each groove in the grooved mode. This electrospray system was applied to the diffusion combustion. It is the first step to discover the diffusion combustion characteristics of the electrospray. In case of the single grooved nozzle electrospray, the diffusion flames are occurred at each jet of grooved mode and they are quite stable. The exhaust gas analysis was indicated that there is the critical point which can make very stable diffusion combustion.

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홈노즐을 이용한 정전분무 확산 연소 시스템 개발 및 특성 연구 (Characteristics of the Electrospraying Combustion Using Grooved Nozzle)

  • 김우진;김경태;김상수
    • 대한기계학회논문집B
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    • 제31권12호
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    • pp.979-985
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    • 2007
  • Spray combustion characteristics of the conducting fuel electrospray has been studied for clean combustion technology. The electrospraying multiplexed system which can maintain the characteristics of the cone-jet mode is able to obtain charged micro droplets with high flow rate. In addition, they have monodisperse distribution during operating the electrospray in the cone-jet mode. The multiplexed grooved nozzle system with the extractor was applied to this experimental device set up. The stable grooved mode can be generated by the grooved nozzle and this electrospray system was applied to the diffusion combustion. It is the first step to discover the diffusion combustion characteristics of the electrospray, In case of the single grooved nozzle electrospray the diffusion flames are occurred at each Jet of grooved mode and they are quite stable. The exhaust gas analysis was indicated that there is the critical point which can make very stable diffusion combustion