• 제목/요약/키워드: Hydrogen generation system

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Hydrogen Generation by Electrical Discharge through Metal/Water System

  • G. J. Kang;S. Y. Cha;Lee, W. M.;Park, Y. M.
    • 한국에너지공학회:학술대회논문집
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    • 한국에너지공학회 1996년도 춘계학술발표회 초록집
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    • pp.111-114
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    • 1996
  • Hydrogen generation by dissociation of water is described. The major force for the dissociation comes from the oxidation potential of the reactive metal reacting with water whereas the minor role is played by electrical discharge which helps sustain the reaction. A premixed reactive metal/water system undergoes a fast hydrogen generation upon the ignition by an electrical pulse. In another method the reactive metal can be fed into the discharge. Some characteristics of the methods are discussed.

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가정용 연료전지 시스템의 전기 효율 향상을 위한 연료/공기 이용률 운전 최적화 (Operational Optimization of Anodic/cathodic Utilization for a Residential Power Generation System to Improve System Power Efficiency)

  • 석동훈;김민진;손영준;이진호
    • 한국수소및신에너지학회논문집
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    • 제24권5호
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    • pp.373-385
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    • 2013
  • To obtain higher power efficiency of Residential Power Generation system(RPG), it is needed to operate system on optimized stoichiometric ratios of fuel and air. Stoichiometric ratios of fuel/air are closely related to efficiency of stack, reformer and power consumption of Balance Of Plant(BOP). In this paper, optimizing stoichiometric ratios of fuel/air are conducted through systematic experiments and modeling. Based on fundamental principles and experimental data, constraints are chosen. By implementing these optimum values of stoichiometric ratios, power efficiency of the system could be maximized.

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.

200 W급 연료전지 무인기를 위한 NaBH4 가수분해용 수소발생시스템의 성능평가 (Performance Evaluation of Hydrogen Generation System using NaBH4 Hydrolysis for 200 W Fuel Cell Powered UAV)

  • 오택현;권세진
    • 한국항공우주학회지
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    • 제43권4호
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    • pp.296-303
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    • 2015
  • 무인기 운용 환경을 고려하여 다양한 조성의 $NaBH_4$ 용액을 사용해 수소발생시스템의 성능 평가를 수행하였다. 먼저, 자발가수분해와 30분의 수소발생실험을 수행하였다. 수소의 손실, 안정한 수소 발생, $NaBO_2$의 석출, 전환 효율과 무인기의 운용을 고려하여 $NaBH_4$ 용액의 조성을 1 wt% NaOH + 25 wt% $NaBH_4$+74wt% $H_2O$로 결정하였다. 200 W급 연료전지 시스템을 위해 장시간 수소발생실험도 수행되었다. 비록 $NaBO_2$의 석출로 인해서 수소 발생률이 감소하였지만, 200 W 연료전지를 위한 수소를 3시간동안 발생(전환 효율: 87.4%)시켰다. 600 Wh의 에너지를 갖는 200 W급 연료전지 시스템의 에너지 밀도는 263 Wh/kg이었다. 기존 배터리 무인기에 비해 약 1.5배 이상의 체공 시간을 달성할 수 있다.

A Study on High Performance Converter Topology for Hydrogen Gas Generation Electrolysis System

  • 강태원;고유란;서용석;정준익;노도환
    • 전력전자학회:학술대회논문집
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    • 전력전자학회 2010년도 하계학술대회 논문집
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    • pp.196-197
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    • 2010
  • This paper investigates a high performance converter topology for hydrogen gas generation electrolysis system. The proposed converter topology consists of full-bridge inverter, medium frequency transformer, and diode rectifier. Hydrogen gas generation electrolysis process considered in the paper is analyzed and characterized by its equivalent circuit. The electrolysis cell is modeled as effective resistance, capacitance, inductance, and internal emf voltage source. The proposed converter topology provides enhanced efficiency of hydrogen gas generation process under the operating condition of dc output voltage with high frequency ripple on it. The high performance operation of proposed converter is confirmed through the simulation with the electrolysis cell considered in the equivalent circuit model.

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Visions and Technical Challenges of Hydrogen Economy: Power System Viewpoint

  • Won Dong-Jun;Liu Chen-Ching
    • KIEE International Transactions on Power Engineering
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    • 제5A권4호
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    • pp.339-343
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    • 2005
  • Hydrogen, as a future energy source, is thought as an alternative of fossil fuel in view of environment and energy security. Hydrogen has the properties of both fuel and electricity so that it can make the energy paradigm shift in the future. Therefore, researches on hydrogen in power system area are essential and urgent due to their huge effects on current paradigm. In this paper, the visions and technical challenges of hydrogen in power system are reviewed as energy storage, dispersed generation (DG), DC generator, and combined heat and power (CHP).

그린수소 기반 섹터 커플링 통한 재생에너지 출력제한 경감효과 연구 (Study on Reduction of Curtailment of Renewable Generation based on Green Hydrogen Sector Coupling)

  • 전우영;김진이;이성우
    • 신재생에너지
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    • 제18권2호
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    • pp.50-59
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    • 2022
  • The Korean government announced the "1st Basic Plan for the Transition to Hydrogen Economy" in 2021 and declared the establishment of a hydrogen industry ecosystem by 2040. To build a low-carbon power system, resources that can efficiently accommodate renewable energy are required, and green hydrogen is considered a potential solution. This study analyzed the economic feasibility of green hydrogen-based sector coupling to reduce curtailment of renewable generation in the Jeju power system by 2025 under the scenario of with or without HVDC#3. The result showed that HVDC#3 significantly reduced the frequency of curtailment from 16.1% to 3.0%. In addition, green hydrogen-based sector coupling was an economically feasible option as result showed an IRR of 4.86% when HVDC#3 was connected and 11.45% when it was not under the condition of achieving 50% curtailment reduction. This study shows that the higher the level of renewable energy deployment, the more delayed the HVDC connection between Jeju and the main land, and the lower the SMP, the more economically feasible the green hydrogen-based sector coupling is. Furthermore, this study suggests that the policy goal of completely reducing curtailment is not economically efficient.

NaBH4를 이용한 수소발생반응의 촉매에 관한 연구 (A Study on the Catalysts for Hydrogen Generation Reaction Using NaBH4 Solution)

  • 정성욱;조은애;오인환;홍성안;김성현;서용교
    • 한국수소및신에너지학회논문집
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    • 제14권2호
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    • pp.114-121
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    • 2003
  • Hydrogen generation system using aqueous $NaBH_4$ solution was developed for feeding small polymer electrolyte membrane fuel cells (PEMFCs). Ru was selected as a catalyst with its high activity for the hydrogen generation reaction. Hydrogen generation rate was measured with changing the solution temperature, amount of catalyst loading, $NaBH_4$ concentration, and NaOH (a base-stabilizer) concentration. A passive air-breathing 2 W PEMFC stack was operated on hydrogen generated using $20wt%\;NaBH_4+5wt%$ NaOH solution and Ru catalyst.

2상 흐름계에서 유로설계에 따른 전해조 분리판의 전산모사 연구 (A study on the channel design of bipolar plate of electrolytic cell by flow dynamic simulation in the two phase flow system)

  • 조현학;장봉재;송주영
    • 한국응용과학기술학회지
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    • 제27권4호
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    • pp.415-420
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    • 2010
  • This study is focused on the channel design of bipolar plate in the electrode of hydrogen gas generator. The characteristics of hydrogen gas generation was studied in view of efficiency of hydrogen gas generation rate and a tendency of gas flow through the riv design of electrode. Since the flow rate and flow pattern of generated gas in the two phase flow system are the most crucial in determining the efficiency of hydrogen gas generator, we adopted the commercial analytical program of COMSOL MultiphysicsTM to calculate the theoretical flow rate of hydrogen gas from the outlet of gas generator and flow pattern of two phase fluid in the electrode. In this study, liquid electrolyte flows into the bipolar plate and decomposed into gas phase, two phase flow simulation is applied to measure the efficiency of hydrogen gas generation.