• 제목/요약/키워드: Natural Gas Reformer

검색결과 33건 처리시간 0.034초

가정용 연료전지 $1Nm^3/hr$급 천연가스 연료처리장치의 운전 특성 (Operating Characteristics of $1Nm^3/hr$ class Natural Gas Fuel Processor for Residential Fuel cells)

  • 신장식;신석재;이승영;양혜경;성봉현;김두훈;박종원
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2007년도 추계학술대회 논문집
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    • pp.19-22
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    • 2007
  • In this study, we investigated operating characteristics of natural gas fuel processor for polymer electrolyte membrane fuel cells (PEMFCs). The fuel processor consists of a natural gas reformer, a water-gas shift reactor, a heat-exchanger and a burner, in which the overall integrated volume is exactly(exceptionally) small, namely, about 10L except outer insulation. The producted hydrogen is $1Nm^3/hr$ and the maximum thermal efficiency is ${\sim}76%$(low heating value) at full operating load. A compact and highly efficient $1Nm^3/hr$ class natural gas fuel processor was developed at UNISON is an advantage for application in residential PEMFCs co-generation systems.

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$CO_2$가 함유된 중소규모 가스전을 위한 KOGAS DME Process 연구 (The Study of KOGAS DME Process in Small and Medium Sized Gas Field Containing $CO_2$)

  • 모용기;조원준;송택용;백영순
    • 한국가스학회지
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    • 제14권4호
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    • pp.51-55
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    • 2010
  • 전 세계적으로 온실가스인 이산화탄소 배출을 감축하기 위하여 다양한 노력이 이루어지고 있다. 이러한 상황에서 이산화탄소가 함유된 중소규모 가스전은 LNG로 개발하기에는 경제성이 떨어진다. 특히 가스전에 포함된 이산화탄소를 분리하기 위하여 분리설비가 추가로 설치되어야 한다. 따라서 플랜트 건설비용이 증가하고, 분리된 이산화탄소는 대기중으로 배출되어 온실가스 감축과는 상반되는 결과를 가져온다. 이러한 비경제적인 가스전에 KOGAS DME Process를 적용하면 가스전에 포함된 이산화탄소를 천연가스와 함께 원료가스로 활용할 수 있어 경제성이 높아진다. KOGAS DME Process는 합성가스를 제조하는 Tri-reformer(삼중개질반응기)를 통하여 $H_2$와 CO로 이루어지는 합성가스를 제조하는데 원료가스로 천연가스와 산소, 스팀, 이산화탄소를 활용한다. 여기서 사용되는 이산화탄소는 공정상 발생하는 이산화탄소를 회수하여 원료가스로 활용하게 된다. 따라서 본 연구에서는 공정상 발생하는 이산화탄소의 발생량과 원료가스로 사용되는 이산화탄소의 사용량 그리고 가스전에 포함된 이산화탄소의 함량을 분석하여 가스전에 포함된 이산화탄소의 활용범위를 연구하고자 한다.

다양한 형태의 버너를 이용한 수증기개질기의 고효율화 연구 (A Study on the High Efficient Steam Reformer using Various Burner Types)

  • 이명용;이지홍;이상석;이진석;이도형
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2008년도 추계학술대회B
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    • pp.2886-2891
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    • 2008
  • The purpose of this study is to develop a highly-efficient and compact steam reformer for PEMFC changing the burner types. For the purpose some of the Can type flat burners were adopted and the results were compared with 'O' company's typical cylinderical flat burner. We used commercial STAR-CD tools for numerical calculation. We found the optimum Can type STR burner and this type of burner was highly efficient comparing with typical burner.

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천연가스 개질형 $30Nm^3/hr$급 수소스테이션 연구개발 현황 (Current Progress of Development of $30Nm^3/hr$ Scale Hydrogen Refueling Station with Natural Gas Reformer)

  • 이영철;조영아;박달영;최정환;김재동;송택용;조병학;김동혁;이중성;오영삼;홍성호
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2006년도 춘계학술대회
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    • pp.25-28
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    • 2006
  • 수소는 청정에너지로서 미래에너지의 대안으로 여겨지고 있기 때문에 수소에너지 관련 기술은 미래 국가 경쟁력을 좌우할 것으로 예상되며 이러한 수소에너지의 핵심인 수소스테이션 관련 기술은 국가연료전지 시장을 비롯한 수소자동차 사업 전반에 커다란 영향을 미칠 것으로 예상되고 있다. 이에 따라 전 세계적으로 수소에너지를 차세대 에너지원으로 개발하기 위하여 전력을 다하고 있으며, 수소연료전지자동차 개발과 아울러 수소스테이션 개발에 대한 인프라 구축 및 실증연구가 본격적으로 이루어지고 있다. 국내에서도 가스공사를 비롯한 에너지 관련 기업에서 수소스테이션 건설이 추진되고 있으며, 본 연구에서도 수소인프라 구축의 일환으로 추진되고 있는 수소스테이션 개발 현황에 대하여 논의하고자 한다.

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천연가스 개질기 설계 (A Design for Natural Gas Reforming Reactor)

  • 이택홍;최운선
    • 한국수소및신에너지학회논문집
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    • 제23권5호
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    • pp.545-550
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    • 2012
  • This work is for the design study of natural gas reformer (40 $m^3/hr$ over). We used experimental kinetic data from literature. After that, we set up theoretical model based on experimental reaction kinetic data. The shape of reactor is 1.7 m long and 200 mm dia. with cylinder geometry. Volume of reactor is 53.4 liter. Average flow velocity of gases in the reactor has been determined 0.272 m/sec and residence time is 9.26 sec. Reaction temperature is $850^{\circ}C$, with pressure 9.3 Bar. Used natural gas volume is about 9.21 $m^3/hr$. Produced hydrogen is 43.7 $m^3/hr$ with no change of pressure. Unreacted natural gas is 0.09 $m^3/hr$ and the amount of steam is 26.9 $m^3/hr$. Steam to $CH_4$ (s/c ratio) is 2.91. Reforming reaction take place from the reactor entrance to 120 cm region of cylinder type reactor. After the entrance of reacting gases to 120 cm region, the reaction reaches equilibrium which is close to products. This study can be applicable to design various reactors. Output data is in good agreements with the data in literatures1).

천연가스 조성에 따른 수소 생산 시에 발생하는 이산화탄소 배출량 산출에 대한 연구 (A Study on the Estimation of Carbon Dioxide Generation During High Purity Hydrogen Production According to Natural Gas Composition)

  • 조정호;노재현;김동선
    • 한국수소및신에너지학회논문집
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    • 제30권6호
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    • pp.485-489
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    • 2019
  • Hydrogen is known to be a clean fuel which does not generate a green house gas during the combustion. However, about 8 kg of carbon dioxide is generated during the course of producing 1 kg of hydrogen through reforming, water gas shift reaction and pressure swing adsorption in order to obtain a high purity hydrogen over 99.999% by volume. In this work, carbon dioxide generation is estimated according to four kinds of natural gas compositions supplied by Korea Gas Corporation and regarding natural gas as pure methane. For the simulation of the modeling, PRO/II with PROVISION V10.2 at AVEVA was utilized and Peng-Robinson equation of state with Twu's alpha function was selected.

연료전지용 천연가스 자열개질기의 기초특성 연구 (Study on Basic Characteristics of Natural Gas Autothermal Reformer for Fuel Cell Applications)

  • 임성광;남석우;배중면
    • 대한기계학회논문집B
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    • 제30권9호
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    • pp.850-857
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    • 2006
  • Hydrogen production using current fueling facilities is essential for near-term applications of fuel cells. A preliminary process for developing a natural gas autothermal reforming (ATR) reactor for fuel cells is presented in this paper. A experimental reactor for methane ATR was constructed and used for characterization of Jin reactor. Temperature profiles of the reactor were observed, and reformed gas compositions were analyzed to evaluate efficiency, conversion and reaction heat with varying amounts of $O_2/CH_4$ at selected furnace temperature and $H_2O/CH_4$. The amount of $O_2/CH_4$ showed strong offsets on reactor temperature, efficiency and conversion indicating that $O_2/CH_4$ is a crucial operation condition. Operation conditions which result in thermal neutrality of ATR reactor system were determined for two cases of an ATR system based on the estimation of enthalpy difference between reactants of assumed inlet temperatures and the products from experimental results. The determined conditions for thermally neutral operations could be used for guidelines to design reformers and for determining the operation parameters of a self sustaining ATR reactor.

수소추출기의 부분부하 운전을 위한 PSA 제어전략에 대한 연구 (A Study on PSA Controll Strategy for Part Load Operation of a Hydrogen Generator)

  • 이상호;김선엽;최영
    • 한국수소및신에너지학회논문집
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    • 제33권6호
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    • pp.819-826
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    • 2022
  • Fuel cell systems are being supplied to households and buildings to reduce greenhouse gases. The fuel cell systems have problems of high cost and slow startup due to fuel processors. Greenhouse gas reduction of the fuel cell systems is also limited by using natural gas. The problems can be solved by using a hydrogen generator consisting of a reformer and pressure swing adsorption (PSA). However, part load operation of the hydrogen generator is required depending on the hydrogen consumption. In this paper, PSA operation strategies are investigated for part load of the hydrogen generator. Adsorption and purge time were changed in the range of part load ratio between from 0.5 to 1.0. As adsorption time increased, hydrogen recovery increased from 29.09% to 48.34% at 0.5 of part load ratio. Hydrogen recovery and hydrogen purity were also improved by increasing adsorption and purge time. However, hydrogen recovery dramatically decreased to 35.01% at 0.5 of part load ratio.

수소생산용 원자로에서 동심축 이중관형 1차 고온가스덕트의 예비 구조정산 (Preliminary Structural Sizing of the Co-axial Double-tube Type Primary Hot Gas Duct for the Nuclear Hydrogen Reactor)

  • 송기남;김용완
    • 한국압력기기공학회 논문집
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    • 제4권2호
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    • pp.1-6
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    • 2008
  • Very High Temperature Gas Cooled Reactor (VHTR) has been selected as a high energy heat source for nuclear hydrogen generation. The VHTR can produce hydrogen from heat and water by using a thermo-chemical process or from heat, water, and natural gas by steam reformer technology. A co-axial double-tube primary hot gas duct (HGD) is a key component connecting the reactor pressure vessel and the intermediate heat exchanger (IHX) for the VHTR. In this study, a preliminary design analysis for the primary HGD of the nuclear hydrogen system was carried out. These preliminary design activities include a determination of the size, a strength evaluation and an appropriate material selection. The determination of the size was undertaken based on various engineering concepts, such as a constant flow velocity model, a constant flow rate model, a constant hydraulic head model, and finally a heat balanced model.

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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.