• Title/Summary/Keyword: Hydrogen production

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Technology Trend for Photochemical Hydrogen Production by the Patent Analysis (특허분석에 의한 광화학적 수소제조 기술동향)

  • Moon, Sang-Jin;Kang, Kyung-Seok;Han, Hye-Jeong;Baeg, Jin-Ook;Kim, Jong-Wook
    • Transactions of the Korean hydrogen and new energy society
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    • v.18 no.2
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    • pp.197-206
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    • 2007
  • There are several methods for the hydrogen production such as steam reforming of natural gas, photochemical method, biological method, electrolysis and thermochemical method, etc. Many researches have been widely performed for the hydrogen production method having low production cost and high efficiency. In this paper, the patents concerning the photochemical hydrogen production method were gathered and analyzed. The search range was limited in the open patents of USA(US), European Union(EP), Japan(JP), and Korea(KR) from 1996 to 2005. Patents were gathered by using key-words searching and filtered by filtering criteria. The patent application trend was analyzed by the years, countries, companies, and technologies.

Hydrogen Production from Wastewater in Takju Manufacturing Factory by Microbial Consortium (탁주제조공장 폐수로부터 혼합균주에 의한 수소생산)

  • Lee, Ki-Seok;Bae, Sang-Ok;Kang, Chang-Min;Chung, Seon-Yong
    • KSBB Journal
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    • v.23 no.3
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    • pp.199-204
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    • 2008
  • Culture conditions for biological hydrogen production were investigated in wastewater of Takju manufacturing factory. Rhodobacter spaeroides KCTC1425, photosynthesis bacteria, and Enterobacter cloacae YJ-1, anaerobic bacteria were used. The hydrogen production were $195.3m{\ell}{\cdot}H_2/{\ell}$ broth for Rhodobacter spaeroides KCTC1425 and $271.8m{\ell}{\cdot}H_2/{\ell}$ broth for Enterobacter cloacae YJ-1 during 36 h. The hydrogen production increased with light intensity, and were highest over 12000Lux. In mixed culture of Rhodobacter spaeroides KCTC1425 and Enterobacter cloacae Y J-1, the optimum mixing ratio of hydrogen production was 20 and 80. Adding volume of yeast extract for maximum hydrogen production was 15 $g/{\ell}$, but there was no effect over that. $Na_2MoO_4$ was most effective among the inorganic salts, and the optimum volume was 0.4 $g/{\ell}$. In semi-continuous culture, total hydrogen production was $13086m{\ell}{\cdot}H_2/{\ell}$ broth for 144 h with operating period of 24 h.

Study on the development of small-scale hydrogen production unit using steam reforming of natural gas (천연가스 개질 방식 중소형 고순도 수소제조 장치 개발 연구)

  • Seo, Dong-Joo;Chue, Kuck-Tack;Jung, Un-Ho;Park, Sang-Ho;Yoon, Wang-Lai
    • 한국신재생에너지학회:학술대회논문집
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    • 2009.06a
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    • pp.720-722
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    • 2009
  • This work is mainly focused at developing the hydrogen production unit with the capacity of 20 $Nm^3/h$ of high purity hydrogen. At present steam reforming of natural gas is the preferable method to produce hydrogen at the point of production cost. The developed hydrogen production unit composed of natural gas reformer and pressure swing adsorption system. To improve the thermal efficiency of steam reforming reactor, the internal heat recuperating structure was adopted. The heat contained in reformed gas which comes out of the catalytic beds recovered by reaction feed stream. These features of design reduce the fuel consumption into burner and the heat duty of external heat exchangers, such as feed pre-heater and steam generator. The production rate of natural gas reformer was 41.7 $Nm^3/h$ as a dryreformate basis. The composition of PSA feed gas was $H_2$ 78.26%, $CO_2$ 18.49%, CO 1.43% and $CH_4$ 1.85%. The integrated production unit can produce 21.1 $Nm^3/h$ of high-purity hydrogen (99.997%). The hydrogen production efficiency of the developed unit was more than 58% as an LHV basis.

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Hydrogen Production Technology (수소생산기술현황)

  • Joo, Oh-Shim
    • Korean Chemical Engineering Research
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    • v.49 no.6
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    • pp.688-696
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    • 2011
  • Hydrogen is one of the few long-term sustainable clean energy carriers, emitting only water as by-products during its combustion or oxidation. The use of fossil fuels to produce hydrogen makes large amount of carbon dioxide (>7 kg $CO_{2}$/kg $H_{2}$) during the reforming processes. Hydrogen production can be environmentally benign only if the energy and the resource to make hydrogen is sustainable and renewable. Biomass is an attractive alternative to fossil fuels for carbon dioxide because of the hydrogen can be produced by conversion of the biomass and the carbon dioxide formed during hydrogen production is consumed by biomass generation process. Hydrogen production using solar energy also attracts great attention because of the potential to use abundance natural energy and water.

Hydrogen and E-Fuel Production via Thermo-chemical Water Splitting Using Solar Energy (국제 공동 연구를 통한 태양에너지 활용 열화학 물분해 그린 수소 생산 연구 및 E-fuel 생산 연구 동향 보고)

  • Hyun-Seok Cho
    • New & Renewable Energy
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    • v.20 no.1
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    • pp.110-115
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    • 2024
  • Global sustainable energy needs and carbon neutrality goals make hydrogen a key future energy source. South Korea and Japan lead with proactive hydrogen policies, including South Korea's Hydrogen Law and Japan's strategy updates aiming for a hydrogen-centric society by 2050. A notable advance is the solar thermal chemical water-splitting cycle for green hydrogen production, spotlighted by Korea Institute of Energy Research (KIER) and Niigata University's joint initiative. This method uses solar energy to split water into hydrogen and oxygen, offering a carbon-neutral hydrogen production route. The study focuses on international collaboration in solar energy for thermochemical water-splitting and E-fuel production, highlighting breakthroughs in catalyst and reactor design to enhance solar thermal technology's commercial viability for sustainable fuel production. Collaborations, like ARENA in Australia, target global carbon emission reduction and energy system sustainability, contributing to a cleaner, sustainable energy future.

Effect of Wogonin on Intracellular Hydrogen Peroxide Production of TM4 Mouse Sertoli cells stressed with polyinosinic:polycytidylic acid (우고닌(Wogonin)이 poly I:C로 유발된 TM4세포 내 하이드로겐퍼록사이드 생성에 미치는 영향)

  • Park, Wansu
    • The Korea Journal of Herbology
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    • v.36 no.5
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    • pp.117-123
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    • 2021
  • Objectives : The aim of this study is to investigate the effect of wogonin on the production of hydrogen peroxide in polyinosinic:polycytidylic acid (poly I:C)-stimulated TM4 mouse sertoli cells. Methods : TM4 were treated with poly I:C (50 ug/mL) and wogonin at concentrations of 5, 10, 25, and 50 µM for 30 min, 2 hr, 12 hr, 18 hr, and 24 hr. The production of intracellular hydrogen peroxide was measured by dihydrorhodamine 123 assay. Results : For 30 min, 2 hr, 12 hr, 18 hr, and 24 hr treatment, wogonin significantly inhibited intracellular hydrogen peroxide productions of TM4 at the concentration of 5, 10, 25, and 50 µM (p<0.05). In details, production of hydrogen peroxide in poly I:C-stimulated TM4 treated for 30 min with wogonin at concentrations of 5, 10, 25, and 50 µM was 95.67%, 92.69%, 92.05%, and 91.97% of the control group treated with poly I:C only, respectively; the production of hydrogen peroxide for 2 hr was 94.44%, 94.41%, 93%, and 92.98%, respectively; production of hydrogen peroxide for 12 hr was 96.78%, 95.32%, 94.33%, and 93.17%, respectively; production of hydrogen peroxide for 18 hr was 94.7%, 93.4%, 93.38%, and 93.35%, respectively; and production of hydrogen peroxide for 24 hr was 95.75%, 94.77%, 94.58%, and 92.8%, respectively. Conclusions : Wogonin might have anti-viral property related with its inhibition of intracellular hydrogen peroxide production in poly I:C-stimulated TM4 cells.

A Study on Methodology of Assessment for Hydrogen Explosion in Hydrogen Production Facility (수소생산시설에서의 수소폭발의 안전성평가 방법론 연구)

  • Jae, Moo-Sung;Jun, Gun-Hyo;Lee, Hyun-Woo;Lee, Won-Jae;Han, Seok-Jung
    • Transactions of the Korean hydrogen and new energy society
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    • v.19 no.3
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    • pp.239-247
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    • 2008
  • Hydrogen production facility using very high temperature gas cooled reactor lies in situation of high temperature and corrosion which makes hydrogen release easily. In that case of hydrogen release, there lies a danger of explosion. However, from the point of thermal-hydraulics view, the long distance of them makes lower efficiency result. In this study, therefore, outlines of hydrogen production using nuclear energy are researched. Several methods for analyzing the effects of hydrogen explosion upon high temperature gas cooled reactor are reviewed. Reliability physics model which is appropriate for assessment is used. Using this model, leakage probability, rupture probability and structure failure probability of very high temperature gas cooled reactor are evaluated and classified by detonation volume and distance. Also based on standard safety criteria which is value of $1{\times}10^{-6}$, safety distance between the very high temperature gas cooled reactor and the hydrogen production facility is calculated.

Analyses on Techno-economic Aspects and Green Hydrogen Production Capability of MW-scale Low-temperature Water Electrolyzers in Jeju Island, South Korea (제주도 MW급 저온 수전해 수소 생산 시스템의 그린수소 생산 능력 및 경제성 분석 )

  • KOSAN ROH;YEONGJIN KIM;HONGJUN JEON;WOOHYUN KIM;HEESANG KO;KYOUNG SOO KANG;SEONG UK JEONG
    • Transactions of the Korean hydrogen and new energy society
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    • v.34 no.3
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    • pp.235-245
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    • 2023
  • Techno-economic analyses on a 5-MW water electrolysis system for hydrogen production, operated in Jeju Island where the portion of renewable energy in the power grid is the highest in Korea, have been performed. The cost of hydrogen production and the economic feasibility of the hydrogen production system have been mainly analyzed based on the levelized-cost-of-hydrogen model. The effects of carbon emission trading and renewable power purchase method have been considered to reduce the cost of green hydrogen production in the case studies. This economic analysis model is expected to be used to derive a business model for green hydrogen production.

The Present Condition and Outlook of Hydrogen Industry in Alberta, Canada (캐나다 앨버타주의 수소산업 현황 및 전망)

  • Moon, Bryan;Lee, Wonsuk;Lee, Youngsoo
    • Journal of the Korean Institute of Gas
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    • v.25 no.1
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    • pp.1-6
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    • 2021
  • Based on Korea's Hydrogen Economy Activation Roadmap, an annual supply of 5.26 million tonnes of hydrogen is required by 2040. But if the hydrogen production from byproduct, extraction, and electrolysis of water is not able to meet the target which is 50% of total production, it would be necessary to increase the portion of imported hydrogen. Therefore, it is essential to secure a variety of sources for overseas production. In this technical report, hydrogen production/transportation policies, current condition, and future prospects of Canada, a major supply candidate, is examined and an example of blue hydrogen project which is considered the most realistic hydrogen supply method is introduced.

Long-Term Performance of Lab-Scale High Temperature Electrolysis(HTE) System for Hydrogen Production (Lab-scale 고온전기분해 수소생산시스템의 장기운전 성능평가)

  • Choi, Mi-Hwa;Choi, Jin-Hyeok;Lee, Tae-Hee;Yoo, Young-Sung;Koh, Jae-Hwa
    • Transactions of the Korean hydrogen and new energy society
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    • v.22 no.5
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    • pp.641-648
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    • 2011
  • KEPRI (KEPCO Research Institute) designed and operated the lab-scale high temperature electrolysis (HTE) system for hydrogen production with $10{\times}10cm^2$ 5-cell stack at $750^{\circ}C$. The electrolysis cell consists of Ni-YSZ steam/hydrogen electrode, YSZ electrolyte and LSCF based perovskite as air side electrode. The active area of one cell is 92.16 $cm^2$. The hydrogen production system was operated for 2664 hours and the performance of electrolysis stack was measured by means of current variation with from 6 A to 28 A. The maximum hydrogen production rate and current efficiency was 47.33 NL/hr and 80.90% at 28 A, respectively. As the applied current increased, hydrogen production rate, current efficiency and the degradation rate of stack were increased respectively. From the result of stack performance, optimum operation current of this system was 24 A, considering current efficiencies and cell degradations.