• 제목/요약/키워드: hydrogen generation and production

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태양광 발전 연계 수전해 시스템의 경제성 분석 (Techno-Economic Analysis of Water Electrolysis System Connected with Photovoltaic Power Generation)

  • 황순철;박진남
    • 한국수소및신에너지학회논문집
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    • 제32권6호
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    • pp.477-482
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    • 2021
  • Hydrogen production, hydrogen production cost, and utilization rate were calculated assuming four cases of hydrogen production system in combination of photovoltaic power generation (PV), water electrolysis system (WE), battery energy storage system (BESS), and power grid. In the case of using the PV and WE in direct connection, the smaller the capacity of the WE, the higher the capacity factor rate and the lower the hydrogen production cost. When PV and WE are directly connected, hydrogen production occurs intermittently according to time zones and seasons. In addition to the connection of PV and WE, if BESS and power grid connection are added, the capacity factor of WE can be 100%, and stable hydrogen production is possible. If BESS is additionally installed, hydrogen production cost increases due to increase in Capital Expenditures, and Operating Expenditure also increases slightly due to charging and discharging loss. Even in a hydrogen production system that connects PV and WE, linking with power grid is advantageous in terms of stable hydrogen production and improvement of capacity factor.

연료전지 연계 수소추출기 통합 시스템에 대한 위험성 평가 (Risk Assessment for the Integrated System of Hydrogen Generation System Linked to Fuel Cell)

  • 신단비;홍성철;이광원;서두현;이동민;김태훈
    • 한국수소및신에너지학회논문집
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    • 제34권6호
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    • pp.728-733
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    • 2023
  • Efforts are continuing to change from fossil fuels used to hydrogen energy society. In order to become a hydrogen society, stable production and real-life applicability are important. As a result, hydrogen generation system linked to fuel cell are being developed. Through this, it is expected that production to power generation will be possible where desired by utilizing the existing urban gas piping network. Hydrogen generation system and hydrogen fuel cell have been subjected to risk assessment and have already been commercialized, but no risk assessment has been conducted on the integrated system linking them. Therefore, it is intended to secure its safety by conducting a risk analysis on the integrated system.

Solid Oxide Fuel Cells for Power Generation and Hydrogen Production

  • Minh, Nguyen Q.
    • 한국세라믹학회지
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    • 제47권1호
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    • pp.1-7
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    • 2010
  • Solid oxide fuel cells (SOFCs) have been under development for a variety of power generation applications. Power system sizes considered range from small watt-size units (e.g., 50-W portable devices) to very large multi-megawatt systems (e.g., 500-MW base load power plants). Because of the reversibility of its operation, the SOFC has also been developed to operate under reverse or electrolysis mode for hydrogen production from steam (In this case, the cell is referred to as solid oxide electrolysis cell or SOEC.). Potential applications for the SOEC include on-site and large-scale hydrogen production. One critical requirement for practical uses of these systems is long-term performance stability under specified operating conditions. Intrinsic material properties and operating environments can have significant effects on cell performance stability, thus performance degradation rate. This paper discusses potential applications of the SOFC/SOEC, technological status and current research and development (R&D) direction, and certain aspects of long-term performance degradation in the operation of SOFCs/SOECs for power generation/hydrogen production.

가스화기술을 이용한 수소제조 기술 (Hydrogen Production by Gasification Technologies)

  • 윤용승
    • 에너지공학
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    • 제13권1호
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    • pp.1-11
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    • 2004
  • 가스화기술은 전세계적으로 수소에너지 사회로 진입하는 과정에서 필요한 대량수소 공급체계를 구축하는데 중단기적으로 필요한 기술이다. 장기적으로는 풍력이나 태양광과 같은 순수한 재생가능에너지에 기반한 수소공급 체계로 발전될 것이나, 향후 10-20년간 대량수순 제조가 필요하다면 경제성이 있는 기술을 $CO_2$ 발생이 최소화되면서 효율도 높은 기술로 발전시켜 적용하는 방향으로 진행될 것이다. 특히, 국내에서는 천연가스, 석탄, 중질잔사유, 폐기물, 바이오매스 등의 원료로부터 출발한 수소제조가 경제적인 측면에서 유리하므로 최소한 중단기적으로는 활용될 것으로 보인다 수소에너지 이슈가 부각되는 배경중의 하나가 기후변화협약에 대응한 $CO_2$저감의 필요성이므로, 이들 중단기적으로 활용될 원료들의 수소제조기술들은 반드시 $CO_2$저감이 가능한 기술로서 개발되어야 한다.

연속반응공정을 이용한 유기성자원으로부터 수소생산을 위한 최적인자도출에 관한 연구 (Deduction of Optimum Factors for Hydrogen Production from Organic Resources using a Continuous Reaction Process)

  • 김충곤;신현곤
    • 유기물자원화
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    • 제19권2호
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    • pp.22-27
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    • 2011
  • 본 연구에서는 음식물류폐기물폐수와 양돈폐수를 특별히 전처리 하지 않고 3:7의 비율로 혼합하여 연속반응공정을 이용한 수소생산의 최적 인자를 도출하기 위해 연구를 수행하였다. 본 연구결과 수소발생량은 pH 5.5의 조건에서 가장 많이 발생하였으며, 이를 통해 음식물류폐기물과 양돈폐수의 혼합시의 수소생산의 최적 pH는 5.5 임을 확인하였다. HRT에 따른 수소발생량은 3일보다 4일의 경우에 높은 수소발생량을 보였으며, 이는 HRT값의 변화에 따라 수소발생미생물의 활성에 크게 관여하는 것으로 HRT역시 수소발생미생물에 중요한 인자로 작용한다고 판단된다. 유기물의 제거율은 운전 6일째에 최대 TS 52%, VS 71%, TSS 83%, VSS 89%의 제거율을 기록하였으며, 수소생산 공정을 통하여도 유기물의 제거가 가능함을 확인하였다.

초고온가스로를 이용한 원자력수소생산 기술개발 (Nuclear Hydrogen Production Technology Development Using Very High Temperature Reactor)

  • 김용완;김응선;이기영;김민환
    • 대한기계학회논문집 C: 기술과 교육
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    • 제3권4호
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    • pp.299-305
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    • 2015
  • 미래에너지의 해법으로 원자력에너지를 이용한 물분해 수소생산시스템의 핵심기술을 개발하였다. 안전성을 보장할 수 있는 제4세대 원자로인 초고온가스로의 고열을 이용하여 황요오드 열화학적인 방법으로 물을 분해하여 수소를 생산하는 기술이다. 원자력수소생산 핵심기술은 초고온에서의 열을 공급하는 것을 모사하는 초고온 실험기술, 초고온가스로의 안전성을 모사하는 연구, 초고온가스로의 노심과 안전성을 해석할 수 있는 도구의 개발, 초고온가스로에 사용하는 연료제조기술, 물을 분해하여 열화학적인 방법으로 수소를 생산하는 기술로 구성된다. 원자력수소생산에 필요한 핵심기술을 개발하고 실험실 규모로 입증하였으며, 대규모 실용화를 위해서 선결되어할 미완성 기술을 제시하였다. 본 기술은 제4세대 원자로개발 국제공동연구로 수행한 기술로서 향후 미래의 원자로 기술이다.

알칼리 용액에서 알루미늄 재활용 캔을 이용한 수소생산에 미치는 환경 인자의 영향 (Effects of Environmental Variables on Hydrogen Generation from Alkaline Solutions using used Aluminum Cans)

  • 윤귀섭;박찬진
    • 한국수소및신에너지학회논문집
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    • 제22권1호
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    • pp.29-34
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    • 2011
  • This study examined the effect of environmental variables, such as the NaOH concentration and solution temperature, on the rate of hydrogen generation from NaOH solutions through the corrosion of used aluminum cans as a potential candidate material for the safe and economic production of hydrogen. Corrosion of the used aluminum cans was promoted by increasing the NaOH concentration and solution temperature because of the loss of aluminum passivity. The measured rate of hydrogen generation from the NaOH solutions increased with increasing NaOH concentration due to the catalytic activity of NaOH in the hydrolysis process. However, at higher solution temperatures, the rate of hydrogen generation rate was less affected by the NaOH concentration than that at lower temperature.

원자로수소생산을 위한 연결부품 실험용 소형 컴팩트 실험장치 개발 (Development of a Compact Nuclear Hydrogen Coupled Components Test Loop)

  • 홍성덕;김종호;김찬수;김용완;이원재
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2008년도 추계학술대회B
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    • pp.2850-2855
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    • 2008
  • Very High Temperature Reactor (VHTR) has been selected as a high energy heat source for a nuclear hydrogen generation. The VHTR heat is transferred to a thermo-chemical hydrogen production process through an intermediate loop. Both Process Heat Exchanger and sulfuric acid evaporator provide the coupled components between the VHTR intermediate loop and hydrogen production module. A small scaled Compact Nuclear Hydrogen Coupled Components test loop is developed to simulate the VHTR intermediate loop and hydrogen production module. Main objective of the loop is to screening the candidates of NHDD (Nuclear Hydrogen Development and Demonstration) coupled components. The operating condition of the gas loop is a temperature up to $950^{\circ}C$ and a pressure up to 6.0MPa. The thermal and fluid dynamic design of the loop is dependent on the structures that enclose the gas flow, especially primary side that has fast gas velocity. We designed and constructed a small scale sulfuric acid experimental system which can simulate a part of the hydrogen production module also.

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열회수에 따른 고온 태양열 열화학 싸이클의 수소 생산에 관한 연구 (A Study on Hydrogen Production with High Temperature Solar Heat Thermochemical Cycle by Heat Recovery)

  • 조지현;서태범
    • 한국태양에너지학회 논문집
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    • 제37권2호
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    • pp.13-22
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    • 2017
  • Two-step water splitting thermochemical cycle with $CeO_2/ZrO_2$ foam device was investigated by using a solar simulator composed of 2.5 kW Xe-Arc lamp and mirror reflector. The hydrogen production of $CeO_2/ZrO_2$ foam device depending on heat recovery of Thermal-Reduction step and Water-Decomposition step was analyzed, and the hydrogen production of $CeO_2/ZrO_2$ and $NiFe_2O_4/ZrO_2$ foam devices was compared. Resultantly, the quantity of hydrogen generation increased by 52.02% when the carrier gas of Thermal-Reduction step is preheated to $200^{\circ}C$ and, when the $N_2/steam$ is preheated to $200^{\circ}C$ in the Water-Decomposition step, the quantity of hydrogen generation increased by 35.85%. Therefore, it is important to retrieve the heat from the highly heated gases discharged from each of the reaction spaces in order to increase the reaction temperature of each of the stages and thereby increasing the quantity of hydrogen generated through this.

수소 생산을 위한 알칼라인 수전해장치 상용품 제작 (Commercial Production for the Hydrogen Generation with Alkaline Electrode Cells)

  • 김보연;김동진;강은영;김태완;심희찬;이택홍
    • 한국수소및신에너지학회논문집
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    • 제26권3호
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    • pp.206-211
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    • 2015
  • For the hydrogen production, Gas Lab and Gnc make alkaline watrer electrolyzer and found optimized condition of experimental parameters of cell material and operating procedures. For the commercial production, we saved electric power consumption and caloric based efficiency with over 70%. Used cell pressures are 10 bar, 30 bar and consumed electricity is $4,000A/m^2$, 4.19 kW ($T=100^{\circ}C$) at 10 bar. Another data is $2,000A/m^2$, 3.92 kW ($T=95^{\circ}C$) at 30 bar. Applied voltage is 1.75 V ($100^{\circ}C$, 10 bar), 1.64 V ($95^{\circ}C$, 10 bar), 1.81 V ($85^{\circ}C$, 30 bar), 1.76 V ($95^{\circ}C$, 30 bar). As cell temperature increase, applied voltage has been decreased and current has been increased. The concentration of KOH solution is 30 weight %.