• 제목/요약/키워드: methane-steam reformer

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CO$_2/H_2$ 원천분리 SMART 공정의 수소생산특성 (Hydrogen Generation Characteristics of SMART Process with Inherent $CO_2/H_2$ Separation)

  • 류호정
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2007년도 추계학술대회 논문집
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    • pp.55-58
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    • 2007
  • To check the feasibility of SMART (Steam Methane Advanced Reforming Technology)system, an experimental investigation was conducted. A fluidized bed reactor of diameter 0.052 m was operated cyclically up to the $10^{th}$ cycle, alternating between reforming and regeneration conditions. FCR-4 catalyst was used as the reforming catalyst and calcined limestone (domestic, from Danyang) was used as the $CO_2$ absorbent. Hydrogen concentration of 98.2% on a dry basis was reached at $650^{\circ}C$ for the first cycle. This value is much higher than $H_2$ concentration of 73.6% in the reformer of conventional SMR (steam methane reforming) system. However, the hydrogen concentration decreased because the $CO_2$ capture capacity decreased as the number of cycles increased.

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3상 교류 부채꼴 방전을 이용한 메탄으로부터 수소 생산 (Production of Hydrogen from Methane Using a 3 Phase AC Glidarc Discharge)

  • 김성천;전영남
    • 한국수소및신에너지학회논문집
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    • 제18권2호
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    • pp.132-139
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    • 2007
  • Popular techniques for producing synthesis gas by converting methane include steam reforming and catalyst reforming. However, these are high temperature and high pressure processes limited by equipment, cost and difficulty of operation. Low temperature plasma is projected to be a technique that can be used to produce high concentration hydrogen from methane. It is suitable for miniaturization and for application in other technologies. In this research, the effect of changing each of the following variables was studied using an AC Glidarc system that was conceived by the research team: the gas components ratio, the gas flow rate, the catalyst reactor temperature and voltage. Glidarc plasma reformer was consisted of 3 electrodes and an AC power source. And air was added for the partial oxidation reaction of methane. The result showed that as the gas flow rate, the catalyst reactor temperature and the electric power increased, the methane conversion rate and the hydrogen concentration also increased. With $O_2/C$ ratio of 0.45, input flow rate of 4.9 l/min and power supply of 1 kW as the reference condition, the methane conversion rate, the high hydrogen selectivity and the reformer energy density were 69.2%, 36.2% and 35.2% respectively.

GlidArc 플라즈마를 이용한 메탄 부분산화 및 Ni 촉매 개질 특성 (Characteristic of Partial Oxidation of Methane and Ni Catalyst Reforming using GlidArc Plasma)

  • 김성천;전영남
    • 대한환경공학회지
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    • 제30권12호
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    • pp.1268-1272
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    • 2008
  • 부분산화가 적용된 저온플라즈마는 메탄으로부터 합성가스를 생산하는 기술이다. 저온 플라즈마 기술은 수증기 개질, 이산화탄소 개질을 이용한 개질기 보다 소형화와 시동특성이 우수한 장점을 가지고 있으며 다양한 분야에 적용이 가능하다. 본 연구에서는 GlidArc 방전을 이용한 저온플라즈마 개질기를 제안하였다. 개질 특성을 파악하고자 변수별 연구로서 가스 조성비율(O$_2$/CH$_4$), 수증기 주입량, 니켈과 철 촉매의 비교 및 이산화탄소 주입량에 대해 실험을 수행하였다. 최적의 수소 생산 조건은 O$_2$/C비가 0.64, 주입 가스유량은 14.2 L/min, 촉매의 반응기의 내부 온도는 672$^{\circ}C$, 주입 가스 량에 대한 수증기 유량 비율은 0.8 그리고 유입전력이 1.1 kJ/L일 때, 41.1%로 최대 수소 농도를 나타냈다. 그리고 이때 메탄의 전환율, 수소 수율 그리고 개질기 열효율은 각각 46.5%, 89.1%, 37.5%를 나타냈다.

SOFC와 MCFC에 적용하기 위한 촉매연소-수증기 개질이 통합된 반응기의 성능에 관한 실험적 연구 (An Experimental Study on the Performances of a Coupled Reactor with Catalytic Combustion and Steam Reforming for SOFC and MCFC)

  • 강태규;김용모;이상민;안국영
    • 한국수소및신에너지학회논문집
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    • 제25권4호
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    • pp.364-377
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    • 2014
  • The performances of a coupled reactor in which a steam reformer and a catalytic combustor were mounted simultaneously had been investigated and compared. The combustible offgas exhausted from the anode of SOFC and MCFC were utilized as heat sources for the endothermic steam methane reforming. The catalytic combustion was used in order to burn the combustible offgas. Thermal energy released by the catalytic combustion is directly transferred to the reformer surrounding the combustor. The various operational conditions such as fuel utilization rate, steam to carbon ratio, amount of catalysts, fuel cell loads were changed. And operating variables were comprehensively identified by sensitivity analysis. The fundamental results from this experimental study show the potential abilities of the coupled reactor. Therefore the results will be of help to design and manufacture the more better coupled reactor in the future.

컴팩트형 수증기 개질장치 효율분석 (Efficiency Analysis of Compact Type Steam Reformer)

  • 오영삼;송택용;백영순;최리상
    • 한국수소및신에너지학회논문집
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    • 제13권4호
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    • pp.304-312
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    • 2002
  • In this study, the performance of the $5Nm^3/hr$ compact type steam reformer which was developed for application of fuel cell or hydrogen station was evaluated in terms of gas process efficiency. For these purposes, reforming efficiency and total efficiency with system load change were analyzed. The reforming efficiency was calculated from the total molar flow of hydrogen output over total fuel flow input to the reformer and the burner on the higher heating value(HHV). In the case of the total efficiency, recovered heat at the heat recovery exchanger was considered. From the results, it was known that system performance was stable, because methane conversion showed the a slight decline which is about 2% though increasing system load to full. Reforming efficiency was increased from 20% to 58%, respectively as increasing system load from 10% to 90%. It was found that total efficiency was higher then reforming efficiency because of terms of heat recovered. As a results, it was known that total efficiency was increased form 75% to 83% at the 10% and 90% system load, respectively. From these results, it is concluded that compact steam reformer which is composed of stacking plate-type reactors is suitable to on-site hydrogen generator or to fuel cell application because of quick start within 1 hr and good performance.

SOFC 스택 적용 마이크로웨이브-매트릭스 개질기 개발 (Development of Microwave-Matrix Reformer for Applying SOFC Stack)

  • 안준;전영남
    • 한국수소및신에너지학회논문집
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    • 제32권6호
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    • pp.534-541
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    • 2021
  • In this study, a novel microwave-matrix reformer was proposed to convert CH4, which is a major component, to a high quality hydrogen energy. And to identify this performance, it was investigated for O2/C ratio, steam feed amount and reformed gas recirculation which are affected for methane conversion and product gas yield. Through the parametric screening studies, optimal operating conditions were that O2/C ratio, steam feed amount and recirculation rate were 1.1, 10 mL/min and 30 L/min. In this conditions, CH4 conversion was 68.1%, H2 selectivity 77.2 and H2/CO ratio 2.62 which are possible applying SOFC stack for RPG (residential power generator).

수소생산 공정에서의 이산화탄소 포집 (CO2 Capture from the Hydrogen Production Processes)

  • 홍연기
    • 융복합기술연구소 논문집
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    • 제12권1호
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    • pp.19-23
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    • 2022
  • Interest in hydrogen production to respond to climate change is increasing. Until now, hydrogen has been mainly produced through the SMR (Steam Methane Reforming) process using natural gas. A large amount of CO2 is emitted in the hydrogen production process through SMR, and the gas flow including CO2 generated in the SMR process has different characteristics for each emission source, so it is important to apply a suitable CO2 capture process. In the case of PSA tail gas or synthesis gas, the applicability of an amine-based process has been confirmed or demonstrated close to a commercial level. However, in the case of the flue gas generated from the reformer, it is still difficult to apply the conventional amine-based process because the partial pressure of CO2 is relatively low. Energy-saving innovative absorbents such as phase separation absorbents can be a solution to these difficulties.

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.

개질관 내부 레이놀즈 수와 버너 온도에 따른 열유동 및 반응 특성 (Characteristics of Heat Transfer and Chemical Reaction in Reformer Tube for Fuel Reynolds Number and Burner Gas Temperature)

  • 한준희;윤기봉;김지윤;이성혁
    • 한국가스학회지
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    • 제19권5호
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    • pp.69-74
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    • 2015
  • 본 연구의 목적은 촉매가 삽입된 단일 개질관 내 가스의 주입 속도와 버너의 고온공기 주입온도에 따른 3차원 전산 유체 해석(Fluent ver. 16.1)을 수행하여, 열유동 및 화학반응 특성을 파악하는 것이다. 개질관 내부 촉매는 니크롬 재질의 다공성 영역으로 가정하였다. 메탄-수증기 개질반응은 1000 K 이상의 고온 환경에서 작동하므로 전도, 대류 및 복사를 고려한 복합열전달을 해석했다. 수소 개질량을 비교하기 위한 두 개의 레이놀즈 수는 49,000과 88,000이고, 레이놀즈 수가 88,000인 경우, 고온공기의 온도를 각각 1100 K, 1200 K 및 1300 K로 설정하였다. 수치해석 결과, 레이놀즈 수가 낮을 경우 개질관 내부의 온도가 상승하였으며, 수소 개질량도 증가하였다. 레이놀즈 수가 높을수록 상대적으로 온도가 낮은 가스의 대류 열전달량이 증가하여 개질관 내의 온도는 낮아져 수소 개질량은 감소한다. 그리고 고온 공기의 온도가 높을수록 개질관 내부의 온도가 증가하므로, 수소 개질량도 증가한다.

GlidArc 플라즈마를 이용한 메탄의 개질 특성 및 수소 생산에 관한 연구 (Study on Characteristic of Methane Reforming and Production of Hydrogen using GlidArc Plasma)

  • 김성천;전영남
    • 대한기계학회논문집B
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    • 제31권11호
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    • pp.942-948
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    • 2007
  • Popular techniques for producing hydrogen by converting methane include steam reforming and catalyst reforming. However, these are high temperature and high pressure processes limited by equipment, cost and difficulty of operation. Low temperature plasma is projected to be a technique that can be used to produce high concentration hydrogen from methane. It is suitable for miniaturization and fur application in other technologies. In this research, the effect of changing each of the following variables was studied using an AC GlidArc system that was conceived by the research team: the gas components ratio, the gas flow rate, the catalyst reactor temperature and voltage. Results were obtained for methane and hydrogen yields and intermediate products. The system used in this research consisted of 3 electrodes and an AC power source. In this study, air was added fur the partial oxidation reaction of methane. The result showed that as the gas flow rate, the catalyst reactor temperature and the electric power increased, the methane conversion rate and the hydrogen concentration also increased. With $O_2/C$ ratio of 0.45, input flow rate of 4.9 l/min and power supply of 1 kW as the reference condition, the methane conversion rate, the high hydrogen selectivity and the reformer energy density were 69.2%, 32.6% and 35.2% respectively.