• 제목/요약/키워드: Methane conversion rate

검색결과 118건 처리시간 0.026초

열수 주입법에 의한 메탄가스 하이드레이트 펠릿의 해리 특성에 관한 실험 연구 (Experimental Study on the Dissociation Characteristics of Methane Hydrate Pellet by Hot Water Injection)

  • 이승한;윤용석;성관제
    • 대한기계학회논문집B
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    • 제35권11호
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    • pp.1177-1184
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    • 2011
  • GTS 기술은 천연가스 하이드레이트 생산, 해양수송 및 재기화의 3 단계로 구성되며, 대규모 재기화 플랜트의 효율적 운용을 위해서는 하이드레이트 펠릿의 재기화에 필요한 열수 온도와 유량의 정확한 예측이 필수적이다. 하이드레이트 펠릿이 열수에서 해리할 때 펠릿 표면에서 분출되는 가스는 주변 유동장과 열전달 특성에 영향을 미칠 것이며 본 실험에서는 가압된 용기내의 중저온 열수에서 해리하는 메탄가스 하이드레이트 펠릿의 용해특성을 연구하였다. 해리과정 중 변화하는 펠릿 형상을 관찰하고 해리 완료시간을 측정함으로써 하이드레이트 전환율, 열수 온도 및 유동속도가 해리에 미치는 영향을 파악하였으며, 펠릿 표면에서 분출되어 상승하는 메탄가스 기포류가 유발한 2 차유동이 열전달률을 증가시켜 해리 완료시간이 단축됨을 확인하였다.

음식물쓰레기 탈수액의 혐기성 생분해 특성 (Characteristics of Anaerobic Degradation on Dewatered Liquid of Household Food Waste.)

  • 김우성;서정윤;이영형
    • 한국환경농학회지
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    • 제17권3호
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    • pp.234-238
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    • 1998
  • Anaerobic degradation characteristics of dewatered liquid of household food waste including methane conversion efficiency and degradation kinetics were studied in an anaerobic batch reactor of 5 L volume. The ultimate methane production for dewatered liquid of household food waste tested was over 0.31L $CH_4/L{\cdot}dewatered$ liquid of household food waste. The kinetic constant of dewatered liquid of household food waste tested was $0.223d^{-1}/L$. The kinetic behavior of anaerobic degradation was described as a first order series reaction. The determinant of rate-limiting step(DR) that is balanced out from the rates of reaction steps was defined by the logarithmic difference of the maximum acidification rate and the maximum methanation rate. Anaerobic degradation characteristics of organic materials were evaluated by the value of DR. The DR of dewatered liquid of household food waste tested was 1.17.

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메탄을 이용한 매체 순환 개질 시스템을 위한 Ni-YSZ 촉매에서의 Y에 따른 촉매 반응 특성 연구 (The Effect of Y at Ni-YSZ Catalysts for the Application to the Process of Methane Chemical-Looping Reforming)

  • 김희선;전유권;황주순;송순호;설용건
    • 한국수소및신에너지학회논문집
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    • 제26권6호
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    • pp.516-523
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    • 2015
  • Nickel based oxygen transfer materials supported on two different YSZs were tested to evaluate their performance in methane chemical-looping reforming. The oxygen transfer materials of YSZs were selected with different amount of the doped yittrium in the $ZrO_2$ structure. The yittrium of 8 mol% stabilized the zirconia oxide to a cubic structure compare to the 3 mol% doping, which is known to be a good for oxygen transfer. Various nickel amounts (16wt.%, 32wt.%, 48wt.%) were loaded on the selected supports. The nickel amount of 32% shows the optimized catalyst structure with good physical properties and reducibility from the XRD, BET and H2-TPR analysis, especially when the support of 8YSZ was used. From the methane chemical-looping reforming, hydrogen was produced by methane decomposition catalyzed by Ni on both YSZs. Comparing two YSZ supports of 3YSZ and 8YSZ during the cycling tests, the catalyst with 8YSZ (Ni 32%) exhibits not only the higher methane conversion and hydrogen production but also a faster reaction rate reaching to the stable point.

탄소중립 메탄 생산을 위한 열화학적 이산화탄소 메탄화 공정의 단열 반응기 성능 분석 (Performance Analysis of Adiabatic Reactor in Thermochemical Carbon Dioxide Methanation Process for Carbon Neutral Methane Production)

  • 김진우;유영돈;서민혜;백종민;김수현
    • 한국수소및신에너지학회논문집
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    • 제34권3호
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    • pp.316-326
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    • 2023
  • Development of carbon-neutral fuel production technologies to solve climate change issues is progressing worldwide. Among them, methane can be produced through the synthesis of hydrogen produced by renewable energy and carbon dioxide captured through a CO2 methanation reaction, and the fuel produced in this way is called synthetic methane or e-methane. The CO2 methanation reaction can be conducted via biological or thermochemical methods. In this study, a 30 Nm3/h thermochemical CO2 methanation process consisting of an isothermal reactor and an adiabatic reactor was used. The CO2 conversion rate and methane concentration according to the temperature measurement results at the center and outside of the adiabatic reactor were analyzed. The gas flow into the adiabatic reactor was found to reach equilibrium after about 1.10 seconds or more by evaluating the residence time. Furthermore, experimental and analysis results were compared to evaluate performance of the reactor.

백금 촉매에 의해 안정화된 메탄의 연소 특성 (Catalytically Stabilized Combustion Characteristics of Methane on Platinum Catalyst)

  • 황철홍;정영식;이창언
    • 한국연소학회:학술대회논문집
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    • 한국연소학회 2000년도 제20회 KOSCO SYMPOSIUM 논문집
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    • pp.152-161
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    • 2000
  • The catalytically stabilized combustion of $CH_4$-air mixture on platinum catalyst was investigated numerically using a 2-D boundary layer model with detailed heterogeneous and homogeneous chemistries. The actual surface site density of monolith coated with platinum was decided by the comparison with experimental data. The comparisons were made between results for cases where only heterogeneous chemistry was allowed and both heterogeneous and homogeneous chemistries were allowed. It was found that the homogeneous reaction in the monolith had little effect on the change of temperature profile, methane conversion rate and light off location. The contributions of each reactions related with CO formation were discussed on the surface. The effects of operation conditions such as equivalence ratio, temperature, velocity and pressure at the entrance were studied. In thermal combustor, CO and NOx was produced less than 1 ppm at the exit and the production of $N_{2}O$ was more dominant than that of NO.

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Optimal replacement of biomass for maximizing gas production

  • Lee, Hwa-Ki
    • 한국경영과학회지
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    • 제10권2호
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    • pp.54-64
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    • 1985
  • Biomass conversion processes have the potential for satisfying approximately 25% of the national demand for methane gas. At the current time very littel analytical work has been done to optimally design and operate the production facilities associated with these processes. This study was motivated by the high cost of these proposed systems. The biomass in storage decays (exponentially) with time while the batch methane production rate decreases (exponentially) over time. The basic problem is to determine the optimal residence times for batches in the anaerobic degester to maximize total production over a fixed planning horizon. The analysis characteries the form of the optimal policy and presents efficient algorithm for obtaining this solution.

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마이크로웨이브 수용체 가열을 통한 바이오가스 개질 (Biogas Reforming through Microwave Receptor Heating)

  • 전영남;안준
    • 신재생에너지
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    • 제20권1호
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    • pp.126-134
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    • 2024
  • Biogas, composed mainly of methane (CH4) and carbon dioxide (CO2), is a renewable gas that can serve as an alternative energy source. In this study, we developed a new microwave reformer and analyzed its reforming characteristics. We observed that higher temperatures of the microwave receptor led to increased reforming efficiency. By supplying appropriate amounts of methane and steam, we could prevent carbon generated from the thermal decomposition reaction of carbon dioxide from depositing on the catalytic active layer, thus avoiding the inhibition of catalytic activity. Hydrogen generation was enhanced when maintaining the biogas ratio and steam supply at adequate levels. Increasing the SiC ratio in the receptor improved the uniformity of temperature distribution and growth rate, resulting in higher conversion rates of the reforming process.

바이오가스와 균체단백질 생산을 위한 유기질 폐기물의 미생물 전환 연구 (Microbial Conversion of Organic Wastes for Production of Biogas and Algal Biomass)

  • 권순찬;김진상
    • KSBB Journal
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    • 제8권5호
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    • pp.438-445
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    • 1993
  • 유기칠 폐기물을 보다 효율적으로 처리하고자, 상 분리 혐기발효와 Chiorella 배양에 의한 생우분의 4 단계-복합처리를 시도하였다. 3배 희석 생우분을 6 일간 산발효시킨 발효액을 4 일의 수리학적 체류시 간으로 1차 에탄발효조에 공급했을 때, 평균 977ml/l C비ture/day의 바이오가스가 생산되었고, 1차 발효 폐액을 역시 4일의 체류시간으로 2차 메탄발효조에 공급했을 때 평균 428ml/l culture/day의 바이오 가스가 생산되었다. 1차 메탄발효의 바이오가스 생 산성은 재래의 단일조식과 비교했을 때 31.4% 증가 되었다. 또한 산발효과정, 1차 및 2차 에탄발효과정 의 유기물 제거율은 각기 71.8%, 42.6% 그리고 2 24.0%였다. 한편, 2차 메탄발효폐액은 Chiarella s sp. PSH3에 의해 10일의 체류시간으로 반연속배양 처리한 결과, 평균 1.8g/l culture/day(2.8$\times$106 cells/ml)의 조체가 생산되었고, 이 과정의 유기물 제거율은 73%였다. 이상의 4단계 처리과정을 통하 여 초발원료인 3배 희석 생우분의 COD가 51, 300ppm에서 최종단계인 Chiarella의 처리에 의해 평균 85ppm으로 감소되어 총유기물 제거율이 99.8 %에 달하였다. 이들의 결과는 유기질 폐기물의 효 율적 처리와 더불어 바이오가스와 균체단백질을 생산하는 복합처리계의 구성이 가능함을 나타낸다.

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매체순환식 가스연소기용 산소공여입자들의 연료별 연소특성 (Reduction Characteristics of Oxygen Carrier Particles for Chemical-looping Combustor with Different Fuels)

  • 류호정;김경수;박영성;박문희
    • 한국수소및신에너지학회논문집
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    • 제20권1호
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    • pp.45-54
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    • 2009
  • Reduction reactivity and carbon deposition characteristics of three oxygen carrier particles(OCN01, OCN02, OCN03) have been investigated by using hydrogen, methane, syngas, and natural gas as fuels. For all particles, the maximum conversion, the oxygen transfer capacity, and the degree of carbon deposition increased as the reactive carbon contents increased. The reduction rate and the oxygen transfer rate increased as the moles of required oxygen per input gas increased. The change of maximum conversion, reduction rate, oxygen transfer capacity, oxygen transfer rate and degree of carbon deposition for different fuels can be explained consistently by using parameters such as the reactive carbon contents and the moles of require oxygen per input gas.

메탄올탈수소효소 저해시 메탄산화에 의한 메탄올 전환생성 특성 (Characteristics of Methanol Production Derived from Methane Oxidation by Inhibiting Methanol Dehydrogenase)

  • 유연선;한지선;안창민;민동희;모우종;윤순욱;이종규;이종연;김창균
    • 대한환경공학회지
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    • 제33권9호
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    • pp.662-669
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    • 2011
  • 본 연구에서는 메탄의 생물학적 메탄올 전환에 관한 연구를 수행하였다. 바이오가스 중의 메탄은 메탄산화균의 methane monooxygenase (MMO)의 생물학적 촉매반응에 의해 산화되었으며, 인산염, NaCl, $NH_4Cl$, EDTA와 같은 methanol dehydrogenase (MDH)의 활성 저해제를 이용하여 MDH의 활성도를 저해함으로써 메탄올의 전환이 이루어졌다. 메탄산화균은 $35^{\circ}C$, pH 7, 인공 바이오가스($CH_4$ 50%, $CO_2$ 50%) / Air의 부피비가 0.4인 조건에서 메탄 산화 정도가 0.56 mmol로 최대로 나타났다. 인산염 40 mM, NaCl 50 mM, $NH_4Cl$ 40 mM, EDTA $150{\mu}m$ 이하일 때 저해제의 종류에 상관없이 메탄 산화율은 80% 이상을 달성하였다. 한편, 인산염 40 mM, NaCl 100 mM, $NH_4Cl$ 40 mM, EDTA $50{\mu}m$ 주입 시 각각 1.30, 0.67, 0.74, 1.30 mmol의 메탄이 산화되는 동시에 각각 0.71, 0.60, 0.66, 0.66 mmol의 메탄올이 최대로 생성되었다. 이때의 메탄올 전환율은 각각 54.7, 89.9, 89.6 및 47.8%였으며 최대 메탄올 생성 속도는 $7.4{\mu}mol/mg{\cdot}h$였다. 이로부터 대상 저해제로 MDH 활성도를 일반적으로 35% 저해 시에 메탄올 생산량이 최대인 89.9%까지 나타남을 알 수 있었다.