• Title/Summary/Keyword: 연료 개질

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Technical Trends of Hydrogen Production (수소생산 기술동향)

  • Ryi, Shin-Kun;Han, Jae-Yun;Kim, Chang-Hyun;Lim, Hankwon;Jung, Ho-Young
    • Clean Technology
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    • v.23 no.2
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    • pp.121-132
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    • 2017
  • The increase of greenhouse gases and the concern of global warming instigate the development and spread of renewable energy and hydrogen is considered one of the clean energy sources. Hydrogen is one of the most elements in the earth and exist in the form of fossil fuel, biomass and water. In order to use hydrogen for a clean energy source, the hydrogen production method should be eco-friendly and economic as well. There are two different hydrogen production methods: conventional thermal method using fossil fuel and renewable method using biomass and water. Steam reforming, autothermal reforming, partial oxidation, and gasification (using solid fuel) have been considered for hydrogen production from fossil fuel. When using fossil fuel, carbon dioxide should be separated from hydrogen and captured to be accepted as a clean energy. The amount of hydrogen from biomass is insignificant. In order to occupy noticeable portion in hydrogen industries, biomass conversion, especially, biological method should be sufficiently improved in a process efficiency and a microorganism cultivation. Electrolysis is a mature technology and hydrogen from water is considered the most eco-friendly method in terms of clean energy when the electric power is from renewable sources such as photovoltaic cell, solar heat, and wind power etc.

Characteristics of LPG Fuel Reforming Utilizing Plasma Reformer (LPG 연료의 플라즈마 개질 특성연구)

  • Park, Yunhwan;Lee, Deahoon;Kim, Changup;Kang, Kernyoung;Cho, Yongseok
    • Journal of the Korean Institute of Gas
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    • v.16 no.6
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    • pp.17-22
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    • 2012
  • In this study, characteristics of reforming process of Automotive LPG fuel using plasma reactor are investigated. Because plasma reformer technology has advantages of a fast start-up and wide fuel/oxidizer ratio of operation, and reactor size is smaller and more simple compared to typical combustor and catalytic reactor, plasma reforming is suitable to the on-board vehicle reformer. To evaluate the characteristics of the reforming process, parametric effect of $O_2$/C ratio, reactant flow rate and plasma power on the process were investigated. In the test of varying $O_2$/C ratio from partial oxidation stoichiometry to combustion stoichiometry, conversion of LPG was increased but selectivity of $H_2$ decreased. The optimum condition of $O_2$/C ratio for the highest $H_2$ yield was determined to be 0.8~0.9 for 20~50 lpm. The result can be a guide to map optimal condition of reforming process.

Planar fuel cell design integrated with methanol reformer by using a high temperature membrane (고온형 멤브레인을 사용한 메탄올 개질 연료전지의 개질기 일체형 평판 설계)

  • Kim, Sung-Han;Jang, Jae-Hyuk;Gil, Jae-Hyoung;Lee, Hong-Ryul;Cha, Hye-Yeon;Ku, Bo-Sung;Jung, Chang-Ryul;Kundu, Arunaha;Miesse, Craig;Oh, Yong-Soo
    • 한국신재생에너지학회:학술대회논문집
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    • 2006.11a
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    • pp.467-470
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    • 2006
  • For a mobile application such as cellular phone, micro fuel cells should be extremely compact and thin. RHFC can be an alternative solution because RHFC gives higher power density than DMFC and does not need ahydrogen storage vessel In this paper, RHFC using methanol fuel is made as a novel planar design without a PROX. Both reformer and cell are made closely in a same plate to share the heater of reformer with the cell. The PBI membrane is used in the cell. The reason is that high temperature of reformer can cause a performance drop when perfluorosulfonic acid membrane such as Nafion is used such a high temperature operation also guarantees the higher CO tolerance to MEA catalyst. The cell is designed as an air-breathing type which the cathode of the cell is opened to the air. The commercial Cu/ZnO/Al2O3 steam reformer catalyst is packed in reformer channel. The active area of MEA is $11.9cm^2$ and the peak power density was $27.5mW/cm^2$.

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Study on Reaction Characteristics and Catalysts to Reform Diesel for Production of Hydrogen (수소생산을 위한 디젤 개질용 촉매와 반응특성에 관한 연구)

  • Kang, In-Yong;Bae, Joong-Myeon
    • Journal of the Korean Electrochemical Society
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    • v.8 no.1
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    • pp.12-16
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    • 2005
  • Diesel is one of the best hydrogen systems, which has very high volumetric density $[kg\;H_2/m^3]\;(>100)\;and\;gravimetric\;density[\%\;H_2]\;(>\;15)$Several catalysts were selected for diesel reforming. 3 catalysts of our group (NECS-1, NECS-2, NECS-3) and 2 commercial catalysts (Sud-Chemie, Inc, FCR-HCl4, FCR-HC35) were used to reform diesel. NECS-1 showed the best performance to reform diesel. In addition to these results, we studied on reaction characteristics for better understanding about auto thermal reforming of diesel by investigating product gas concentrations and temperature Profiles along the catalyst bed. We found technological issues such as fuel delivery and thermal configuration between front exothermic part and rear endothermic part.

A Study on Characteristics of Wood Pellet Gasification in Two Stage Gasifier (Two Stage Gasifier에서의 우드펠릿 가스화 특성 연구)

  • Lee, Moon-Won;Choi, Sun-Yong;Kim, Lae-Hyun
    • Journal of Energy Engineering
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    • v.19 no.4
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    • pp.240-245
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    • 2010
  • In this study, characteristics of wood pellet gasification was studied using a Two Stage Gasifier which is consisted of pyrolysis reactor and ultra high temperature reformer. The average yields of $H_2$, $CH_4$, CO, $CO_2$ were 16.7, 11.3, 37.2, 26.6 L/mim, conversion rate from biomass to gas was 65% in pyrolysis reactor and gas yields in reformer were 55.4, 0.8, 120.8, 56.8 L/mim, respectively. The hydrogen flow rate from reformer is obtained 360.1 L/hr. The most of $CH_4$ was decomposed from 12.3 to 0.3 vol.% while $H_2$ is from 18.2 to 23.7 vol.% in reformer by methane dry reforming, Boudouard reaction, oxidation and/or steam reforming. The amount of $H_2O$ generated by hydration reaction from reformer was 1111.8 g, its accelerated conversion of $CH_4$ to other products. The conversion rate from $CH_4$ to other Compounds was 97.2%. Cold gas efficiency was 53.2%.

Hydrogen Production from hydrocarbon by carbon black decomposition (탄화수소류로부터 카본블랙에 의한 수소생산)

  • Yoon, Suk-Hoon;Han, Gi-Bo;Lee, Jong-Dae;Park, No-Kuk;Ryu, Si-Ok;Lee, Tae-Jin;Yoon, Ki-June
    • 한국신재생에너지학회:학술대회논문집
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    • 2005.11a
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    • pp.638-641
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    • 2005
  • 수소는 자원이 무한하고 청결한 에너지이다. 수소는 무공해 청정 대체연료로 사용될 수 있을 뿐만 아니라 풍부한 자원으로부터 얻을 수 있다. 수소에너지는 물을 분해하여 얻거나 화석연료를 수증기개질 또는 부분산화 시킴으로써 얻을 수가 있다. 수소에너지는 1차 에너지를 변환시켜 얻을 수 있는 2차 에너지로서 환경에 대한 부하가 거의 없어 향후 화석연료를 대체할 수 있는 가장 가능성이 높은 에너지이며, 연료전지의 상용화를 앞두고 있어 중요성이 더욱 증대되고 있다. 수소를 생산하는 방법 중 가장 이상적인 방법으로는 물분해함으로써 수소를 제조하는 방법이 있다. 그러나 물분해에 의한 수소생산은 제조비용이 비싸 경제성이 떨어진다는 점과 수소의 대량생산에 필요한 기술확보가 여의치 않아 어렵다. 그러므로 수소를 저 비용으로 대량 생산할 수 있는 수소 제조 기술의 확보가 선행되어야 할 것이다. 현재 상용화되어 있는 수소제조방법은 거의 석유나 천연가스의 수증기 개질에 의한 수소 제조 방법이다. 그러나 이러한 방법은 유해 환경 물질인 CO나 $CO_2$를 배출하는 단점을 지니고 있다. 이러한 단점을 보완키 위한 수소 제조공정의 대안 중 하나는 탄화수소연료의 수소와 탄소로의 직접분해에 의한 수소생산이다. 이 중 원하는 생성물인 수소 외에 부산물이 카본이 동시에 얻을 수 있는 메탄분해에 의한 수소생산방법은 생산된 수소의 약 15%만 연소시킴으로서 필요한 에너지를 공급할 수 있으며, 동시에 지구온난화의 주범인 CO 또는 $CO_2$가 생성되지 않는 장점이 있다. 하지만 메탄을 분해하기 위해서는 매우 높은 에너지가 필요로 하게 된다. 이에 반해 프로판은 메탄보다 낮은 열원에서 분해할 수 있는 장점을 지니고 있다. 본 연구에서는 메탄보다 분해하기 쉬운 프로판을 직접 분해하여 수소를 생산하고자 하였다. 프로판 직접분해반응는 $500\sim750^{\circ}C$의 온도 범위에서 이루어 졌으며, 촉매로서는 국내에서 생산되는 상용촉매인 카본블랙을 이용하였다.

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Operation Characteristics of the kW-class PEMFC Stack (kW급 고분자전해질 연료전지 스택의 운전 특성)

  • 최형준;안상렬;조성아;하홍용;오인환;홍성안;임태원
    • Proceedings of the Korea Society for Energy Engineering kosee Conference
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    • 1999.05a
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    • pp.239-244
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    • 1999
  • 고분자전해질 연료전지는 다른 형태의 연료전지에 비하여 전류밀도가 크고 구조가 간단하며 전해질의 누출이나 손실의 염려가 없어 수송용 무공해 차량의 동력원으로서 아주 적합한 시스템이다. 또한 빠른 시동과 응답특성, 우수한 내구성을 가지고 있고 연료로 수소 이외에도 메탄올이나 천연가스를 개질하여 사용할 수 있다는 장점이 있다 [1, 2]. 고분자전해질 연료전지는 원래 우주선, 군사용 등 특수 목적으로 사용되던 것이 1980년대 말에 이르러 도심지 대기오염을 저감시키기 위한 전기 자동차의 동력원 및 이동용 전원으로 사용될 것이 기대됨에 따라 전세계적으로 다시 연구 개발의 활기를 찾게 되었다.(중략)

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Development of a 25 kW Externally Reforming MCFC Sys (25 kW 외부개질형 용융탄산염 연료전지 발전시스템 개발)

  • 임희천;고준호;이충곤;유영성;안교상;강병삼;서혜경;홍성안;최영태
    • Proceedings of the Korea Society for Energy Engineering kosee Conference
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    • 1999.05a
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    • pp.219-223
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    • 1999
  • 1993년부터 시작한 선도기술개발 사업의 1단계 사업은 용융탄산염형 연료전지(Molten Carbonate Fuel Cell ; MCFC) 기초 기술기반을 확립하기 위하여 단위전지 요소기술 제작, 소규모 스택의 운전 및 운용 등을 중심으로 연구개발이 진행되어 1996년에는 2 kW급 MCFC 시스템을 개발 3,250 시간 장기 운전평가를 실시 하므로써 소기의 목적을 달성하였다.(중략)

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Numerical Study on operating conditions of Autothermal Reformer using natural gas (천연가스를 이용한 자열개질기의 운영조건에 대한 수치해석 연구)

  • Kim, Jinwook;Kim, Sangwoo;Park, Dalyung;Jeon, Sanghee;Lee, Dohyung
    • 한국신재생에너지학회:학술대회논문집
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    • 2010.11a
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    • pp.91.1-91.1
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    • 2010
  • The Reforming system is an effective method to generate hydrogen which uses for fuel cell system. The purpose of this study is to present characteristics of an autothermal reformer at various operating conditions and to investigate ideal conditions for reforming efficiency. Dominant chemical reactions are Full Combustion, Steam Reforming reaction, Water-Gas Shift reaction and Direct Steam Reforming reaction. Operating parameters of the autothermal reformer are inlet temperature, Oxygen to Carbon Ratio, Steam to Carbon Ratio and Gas Hourly Space Velocity. Autothermal reformer is filled with catalysis of a packbed-bed type. Using numerical approach, we have investigated on various reaction conditions.

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Numerical study on operating parameters of autothermal reformer for hydrogen production (수소생산을 위한 자열개질기 작동조건의 수치해석 연구)

  • Park, Joon-Guen;Lee, Shin-Ku;Lim, Sung-Kwang;Bae, Joong-Myeon
    • 한국신재생에너지학회:학술대회논문집
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    • 2008.05a
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    • pp.507-510
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    • 2008
  • Characteristics of an autothermal reformer at various operating parameters have been studied in this paper. Numerical method has been used, and simulation model has been developed for the analysis. Full Combustion reaction, Steam Reforming(SR) reaction, Water-Gas Shift(WGS) reaction, and Direct Steam Reforming(DSR) reaction are assumed as dominant chemical reactions in the autothermal reformer. Simulation results are compared with experimental results for code validation. Operating parameters of the autothermal reformer are inlet temperature, Oxygen to Carbon Ratio(OCR), Steam to Carbon Ratio(SCR), and Gas Hourly Space Veolcity(GHSV). SR reaction rate decreases with low inlet temperature. If OCR is increased, $H_2$ yield is increased but optimal point is suggested. WGS reaction is activated with high SCR. When GHSV is increased, reforming efficiency is increased but pressure drop may decrease the system efficiency.

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