• 제목/요약/키워드: Hydrogen storage and production

검색결과 118건 처리시간 0.026초

메탄올 내부개질형 용융탄산염 연료전지의 성능 (Performance of a Molten Carbonate Fuel Cell With Direct Internal Reforming of Methanol)

  • 하명주;윤성필;한종희;임태훈;김우식;남석우
    • 청정기술
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    • 제26권4호
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    • pp.329-335
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    • 2020
  • 재생에너지로부터 수전해를 통하여 생산된 수소와 포집된 CO2를 활용하여 메탄올을 합성하는 power-to-methanol 기술이 재생에너지를 대용량으로 저장하는 방안으로 제시되고 있다. 본 연구에서는 메탄올을 수소 및 전력 생산에 활용함에 있어 더욱 효율적인 방법으로 연료전지 내부에서 메탄올 수증기개질 반응이 일어나는 내부개질형 용융탄산염 연료전지에 대해 성능 분석을 실시하였다. 용융탄산염 연료전지의 연료극으로 사용되는 다공성 Ni-10 wt%Cr을 촉매로 메탄올 수증기개질 반응을 수행한 결과 연료전지 운전 조건에서 연료극은 메탄올 수증기개질 반응에 충분한 활성을 나타내었다. 메탄올 수용액을 직접 용융탄산염 연료전지의 연료극으로 공급한 결과 연료전지의 성능은 외부 개질기를 통하여 생산된 개질가스를 공급하는 경우에 비해 다소 성능이 낮게 나타났으며, 메탄올 공급유량이 비교적 낮은 경우 고 전류밀도에서 불안정한 성능을 나타내었다. 연료극으로부터 생성된 가스를 재순환시킴으로써 연료전지의 성능을 향상시킬 수 있었으며, 메탄올 전환율도 90% 이상 얻을 수 있었다. 물질수지를 통하여 연료극에서 일어나는 반응을 분석한 결과 전류밀도 및 가스 재순환 유량이 증가함에 따라 메탄올 수증기개질 반응속도가 증가함을 확인하였다. 이상의 결과로부터 별도의 촉매층을 설치할 필요 없이 연료극 만으로도 용융탄산염 연료전지 내에서 메탄올 수증기개질 반응이 가능하며, 메탄올 내부개질형 용융탄산염 연료전지를 통하여 전력과 합성가스를 동시에 생산할 수 있음을 확인하였다.

The TANDEM Euratom project: Context, objectives and workplan

  • C. Vaglio-Gaudard;M.T. Dominguez Bautista;M. Frignani;M. Futterer;A. Goicea;E. Hanus;T. Hollands;C. Lombardo;S. Lorenzi;J. Miss;G. Pavel;A. Pucciarelli;M. Ricotti;A. Ruby;C. Schneidesch;S. Sholomitsky;G. Simonini;V. Tulkki;K. Varri;L. Zezula;N. Wessberg
    • Nuclear Engineering and Technology
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    • 제56권3호
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    • pp.993-1001
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    • 2024
  • The TANDEM project is a European initiative funded under the EURATOM program. The project started on September 2022 and has a duration of 36 months. TANDEM stands for Small Modular ReacTor for a European sAfe aNd Decarbonized Energy Mix. Small Modular Reactors (SMRs) can be hybridized with other energy sources, storage systems and energy conversion applications to provide electricity, heat and hydrogen. Hybrid energy systems have the potential to strongly contribute to the energy decarbonization targeting carbon-neutrality in Europe by 2050. However, the integration of nuclear reactors, particularly SMRs, in hybrid energy systems, is a new R&D topic to be investigated. In this context, the TANDEM project aims to develop assessments and tools to facilitate the safe and efficient integration of SMRs into low-carbon hybrid energy systems. An open-source "TANDEM" model library of hybrid system components will be developed in Modelica language which, by coupling, will extend the capabilities of existing tools implemented in the project. The project proposes to specifically address the safety issues of SMRs related to their integration into hybrid energy systems, involving specific interactions between SMRs and the rest of the hybrid systems; new initiating events may have to be considered in the safety approach. TANDEM will study two hybrid systems covering the main trends of the European energy policy and market evolution at 2035's horizon: a district heating network and power supply in a large urban area, and an energy hub serving energy conversion systems, including hydrogen production; the energy hub is inspired from a harbor-like infrastructure. TANDEM will provide assessments on SMR safety, hybrid system operationality and techno-economics. Societal considerations will also be encased by analyzing European citizen engagement in SMR technology safety.

일체형 재생 연료전지(URFC)용 고분자 전해질 막의 이해 (Understanding of Polymer Electrolyte Membrane for a Unitized Regenerative Fuel Cell (URFC))

  • 정호영
    • 공업화학
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    • 제22권2호
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    • pp.125-132
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    • 2011
  • 본 연구에서는 차세대 연료전지 기술로서 일체형 재생 연료전지(Unitized Regenerative Fuel Cell, URFC)에 대하여 검토하였다. URFC는 신재생 에너지원과 연료전지의 하이브리드 시스템 구현을 목적으로 하는 필수 기술이며 21세기 수소경제 사회 완성을 위한 신기술로 평가된다. 특히 본 연구에서는 URFC 요소 기술로서 고분자 전해질 막에 대한 연구 결과를 정리하여 URFC 기술의 이해를 돕고자 하는 것이 목적이다. URFC용 고분자 전해질 막은 기능적 특성상 높은 수소이온 전도도, 치수안정성, 기계적 물성 및 계면 안정성이 요구된다. 이를 바탕으로 미래 에너지원인 수소의 생산, 저장, 이용을 일체화된 시스템으로 완성시킬 수 있는 URFC 기술은 향후 연료전지 기술과 더불어 풍력과 태양광 발전 등의 신재생 에너지 관련 기술을 함께 발전시킬 수 있는 새로운 연구 분야가 될 것으로 판단된다.

모사된 석탄가스화 합성가스를 이용한 La0.9Sr0.1Cr0.7B0.3O3±δ (B=Mn, Ni, Fe, Ru)의 수성가스전이반응 활성 및 특성에 관한 연구 (The Study on the Catalytic Performance and Characterization of La0.9Sr0.1Cr0.7B0.3O3±δ (B=Mn, Ni, Fe, Ru) for High Temperature Water-gas Shift Reaction with Simuated Coal-derived Syngas)

  • 이슬기;곽재훈;손정민
    • 한국수소및신에너지학회논문집
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    • 제24권6호
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    • pp.543-549
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    • 2013
  • In this study, $La_{0.9}Sr_{0.1}Cr_{0.7}M_{0.3}O_{3{\pm}{\delta}}$ (M=Mn, Ru, Fe, Ni) were prepared by sol-gel method and water gas shift reaction with simulated coal-derived syngas between $400{\sim}650^{\circ}C$ was conducted to evaluate the catalytic activity of prepared catalysts. Physico-chemical properties were characterized by XRD, BET, SEM-EDS and TPR. The formation of perovskite crystallite, $LaCrO_3$ was confirmed and the highest surface area was measured with $La_{0.9}Sr_{0.1}Cr_{0.7}Mn_{0.3}O_{3{\pm}{\delta}}$. Equilibrium conversion of CO above $550^{\circ}C$ was achieved except $La_{0.9}Sr_{0.1}Cr_{0.7}Fe_{0.3}O_{3{\pm}{\delta}}$. and methanation reaction was carried out as side reaction of water gas shift reaction with $La_{0.9}Sr_{0.1}Cr_{0.7}Ni_{0.3}O_{3{\pm}{\delta}}$ and $La_{0.9}Sr_{0.1}Cr_{0.7}Ru_{0.3}O_{3{\pm}{\delta}}$. Conclusively, $La_{0.9}Sr_{0.1}Cr_{0.7}M_n{0.3}O_{3{\pm}{\delta}}$ was the most suitable catalyst of water gas shift reaction above $500^{\circ}C$ for CO conversion and hydrogen production.

천연가스 고체수송 및 저장을 위한 가스 하이드레이트 상평형 조건에 대한 연구 (Phase Equilibrium Conditions of Gas Hydrates for Natural Gas Solid Transportation and Storage)

  • 전용한;김종윤;김종보;김남진
    • 설비공학논문집
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    • 제20권4호
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    • pp.266-273
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    • 2008
  • Natural gas hydrates are ice-like solid substances, which are composed of water and natural gas, mainly methane. They have three kinds of crystal structures of five polyhedra formed by hydrogen-bonded water molecules, and are stable at high pressures and low temperatures. They contain large amounts of organic carbon and widely occur in deep oceans and permafrost regions. Therefore, they are expected as a potential energy resource in the future. Especially, $1m^3$ natural gas hydrate contains up to $172Nm^3$ of methane gas, de pending on the pressure and temperature of production. Such large volumes make natural gas hydrates can be used to store and transport natural gas. In this study, three-phase equilibrium conditions for forming natural gas hydrate were numerically obtained in pure water and single electrolyte solution containing 3 wt% NaCl. The results show that the predictions match the previous experimental values very well, and it was found that NaCl acts as an inhibitor. Also, help gases such that ethane, propane, i-butane, and n-butane reduce the hydrate formation pressure at the same temperature.

수증기 플라즈마를 이용한 DME 개질의 최적화 방안 연구 (Optimization of DME Reforming using Steam Plasma)

  • 정경수;채우리;채호근;정명석;이주연
    • 한국산업정보학회논문지
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    • 제24권5호
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    • pp.9-16
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    • 2019
  • 오늘날 세계 에너지 시장에서는 친환경 에너지의 중요성이 대두되고 있다. 수소 에너지는 미래의 청정에너지원이며 무공해 에너지원 중 하나이다. 특히 수소를 이용한 연료전지 방식은 재생에너지의 유연성을 높여주고 장기간 에너지 저장 및 변환이 가능해서 화석 자원의 사용에 따른 환경문제와 자원의 고갈로 인한 에너지 문제를 동시에 해결할 수 있는 방안으로 판단된다. 본 연구의 목적은 플라즈마를 이용하여 효율적으로 수소를 생산하는 방안으로, 온도에 따른 개질반응과 수율을 확인하여 DME(Di Methyl Ether)개질의 최적화 방안을 연구하는데 있다. 연구 방법은 2.45 GHz의 전자파플라즈마 토치를 사용하여 청정 연료인 DME를 개질하여 수소를 생산하고, 저온 조건($T3=1100^{\circ}C$), 저온 과산소 조건($T3=1100^{\circ}C$), 고온 조건($T3=1376^{\circ}C$)에서 가스화 분석을 진행하였다. 저온 가스화 분석을 통해 $1100^{\circ}C$ 근처에서는 불안정한 개질 반응으로 인해 메탄이 발생하는 현상을 확인하였고, 저온 과산소 가스화 분석은 저온 가스화 분석과 비교하였을 때 수소는 적으나 이산화탄소는 많은 것을 확인할 수 있었다. 고온에서의 가스화 분석을 통해 $1200^{\circ}C$ 이상에서는 메탄이 발생하지 않았고 약 $1150^{\circ}C$ 부터 메탄이 발생하는 것을 알 수 있었다. 결론적으로 개질반응시 온도가 높을수록 수소의 비율이 높아지나 CO 비율은 증가하는 것을 볼 수 있었다. 그러나, 가스화기의 구조적인 문제로 인해 열손실과 개질의 문제가 발생함을 확인하였다. 향후 연구의 발전 방향으로는, 가스화기 개선을 통해 불완전한 연소를 줄여 높은 수율의 수소를 얻고 일산화탄소, 메탄과 같은 기체의 발생을 낮출 필요성이 있는 것으로 판단된다. 본 연구에서 제안하는 DME를 수증기 플라즈마 개질하여 수소를 생산하는 최적화 방안이, 향후 친환경, 신재생 에너지를 생산하는데 의미있는 기여를 할 수 있을 것으로 기대한다.

Comparative study of thermal gelation properties and molecular forces of actomyosin extracted from normal and pale, soft and exudative-like chicken breast meat

  • Li, Ke;Liu, Jun-Ya;Fu, Lei;Zhao, Ying-Ying;Bai, Yan-Hong
    • Asian-Australasian Journal of Animal Sciences
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    • 제32권5호
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    • pp.721-733
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    • 2019
  • Objective: The objectives of this study were to investigate the thermal gelation properties and molecular forces of actomyosin extracted from two classes of chicken breast meat qualities (normal and pale, soft and exudative [PSE]-like) during heating process to further improve the understanding of the variations of functional properties between normal and PSE-like chicken breast meat. Methods: Actomyosin was extracted from normal and PSE-like chicken breast meat and the gel strength, water-holding capacity (WHC), protein loss, particle size and distribution, dynamic rheology and protein thermal stability were determined, then turbidity, active sulfhydryl group contents, hydrophobicity and molecular forces during thermal-induced gelling formation were comparatively studied. Results: Sodium dodecyl sulphate-polyacrylamide gel electrophoresis showed that protein profiles of actomyosin extracted from normal and PSE-like meat were not significantly different (p>0.05). Compared with normal actomyosin, PSE-like actomyosin had lower gel strength, WHC, particle size, less protein content involved in thermal gelation forming (p<0.05), and reduced onset temperature ($T_o$), thermal transition temperature ($T_d$), storage modulus (G') and loss modulus (G"). The turbidity, reactive sulfhydryl group of PSE-like actomyosin were higher when heated from $40^{\circ}C$ to $60^{\circ}C$. Further heating to $80^{\circ}C$ had lower transition from reactive sulfhydryl group into a disulfide bond and surface hydrophobicity. Molecular forces showed that hydrophobic interaction was the main force for heat-induced gel formation while both ionic and hydrogen bonds were different significantly between normal and PSE-like actomyosin (p<0.05). Conclusion: These changes in chemical groups and inter-molecular bonds affected protein-protein interaction and protein-water interaction and contributed to the inferior thermal gelation properties of PSE-like meat.

In vitro evaluation of nano zinc oxide (nZnO) on mitigation of gaseous emissions

  • Sarker, Niloy Chandra;Keomanivong, Faithe;Borhan, Md.;Rahman, Shafiqur;Swanson, Kendall
    • Journal of Animal Science and Technology
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    • 제60권11호
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    • pp.27.1-27.8
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    • 2018
  • Background: Enteric methane ($CH_4$) accounts for about 70% of total $CH_4$ emissions from the ruminant animals. Researchers are exploring ways to mitigate enteric $CH_4$ emissions from ruminants. Recently, nano zinc oxide (nZnO) has shown potential in reducing $CH_4$ and hydrogen sulfide ($H_2S$) production from the liquid manure under anaerobic storage conditions. Four different levels of nZnO and two types of feed were mixed with rumen fluid to investigate the efficacy of nZnO in mitigating gaseous production. Methods: All experiments with four replicates were conducted in batches in 250 mL glass bottles paired with the ANKOM$^{RF}$ wireless gas production monitoring system. Gas production was monitored continuously for 72 h at a constant temperature of $39{\pm}1^{\circ}C$ in a water bath. Headspace gas samples were collected using gas-tight syringes from the Tedlar bags connected to the glass bottles and analyzed for greenhouse gases ($CH_4$ and carbon dioxide-$CO_2$) and $H_2S$ concentrations. $CH_4$ and $CO_2$ gas concentrations were analyzed using an SRI-8610 Gas Chromatograph and $H_2S$ concentrations were measured using a Jerome 631X meter. At the same time, substrate (i.e. mixed rumen fluid+ NP treatment+ feed composite) samples were collected from the glass bottles at the beginning and at the end of an experiment for bacterial counts, and volatile fatty acids (VFAs) analysis. Results: Compared to the control treatment the $H_2S$ and GHGs concentration reduction after 72 h of the tested nZnO levels varied between 4.89 to 53.65%. Additionally, 0.47 to 22.21% microbial population reduction was observed from the applied nZnO treatments. Application of nZnO at a rate of $1000{\mu}g\;g^{-1}$ have exhibited the highest amount of concentration reductions for all three gases and microbial population. Conclusion: Results suggest that both 500 and $1000{\mu}g\;g^{-1}$ nZnO application levels have the potential to reduce GHG and $H_2S$ concentrations.

음식물쓰레기의 특성이 메탄생성량에 미치는 영향분석 (Effect of food waste properties on methane production)

  • 이수관;최홍림;이준희
    • 유기물자원화
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    • 제22권3호
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    • pp.11-22
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    • 2014
  • 음식물 쓰레기는 산완충능(buffer capacity)이 충분하지 않아 포집과 운송기간 동안 유기산이 축적될 수 있고 몰리브덴이나 코발트와 같은 미량원소가 부족할 수 있기 때문에 가축분뇨는 음식물 쓰레기와 혼합소화 시 부족한 메탄생성량을 보충할 수 있는 혼합기질로서 적합한 것으로 판단된다. 본 논문에서는 성공적인 혐기공정 설계 및 안정적 운영을 위한 우리 나라 유래 대상기질의 실제성상 특징과 메탄가스 발생사이의 상관성을 알아보고자 하였다. 서울시의 8개 기초자치단체(강남, 강동, 송파, 영등포, 관악, 구로, 동작, 용산)의 음식물 쓰레기 중간 집하장이나 처리시설에서 음식물 쓰레기를 채취하였다. 음식물 쓰레기의 고형물 함량은 평균 16%를 보였고 잠재 메탄발생량은 평균 $446.6STP-m{\ell}/g-VS$로서 $334.8{\sim}567.5STP-m{\ell}/g-VS$의 범위를 가진다. 우분의 고형물 함량과 잠재메탄 발생량은 각각 평균 26%과 $280.6STP-m{\ell}/g-VS$로 타나났다. 잠재 메탄발생량은 고위발열량, 지방 함량, 탄소함량, 수소함량과 양의 상관관계를 가지고 탄수화물 함량과 음의 상관관계를 가지는 것으로 나타났다($r^2&gt;0.8$). 따라서 이러한 기질특성 분석결과를 통해 잠재 메탄발생량을 비교적 정확하게 예측하였다. 본 연구에서는 단일 기질과 잠재 메탄발생량을 분석하였으나 향후는 최대 메탄발생량을 위하여 혼합기질 (음식물쓰레기, 가축분뇨, 수분조절제 등)의 최적조합을 결정하는 연구가 수행하여야 할 것으로 여겨진다.

Anaerobic Biotreatment of Animal Manure - A review of current knowledge and direction for future research -

  • Hong, Jihyung
    • 한국축산시설환경학회지
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    • 제11권2호
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    • pp.97-102
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    • 2005
  • Anaerobic decomposition is one of the most common processes in nature and has been extensively used in waste and wastewater treatment for several centuries. New applications and system modifications continue to be adapted making the process either more effective, less expensive, or suited to the particular waste in question and the operation to which it is to be applied. Animal manure is a highly biodegradable organic material and will naturally undergo anaerobic fermentation, resulting in release of noxious odors, such as in manure storage pits. Depending on the presence or absence of oxygen in the manure, biological treatment process may be either aerobic or anaerobic. Under anaerobic conditions, bacteria carry on fermentative metabolisms to break down the complex organic substances into simpler organic acids and then convert them to ultimately formed methane and carbon dioxide. Anaerobic biological systems for animal manure treatment include anaerobic lagoons and anaerobic digesters. Methane and carbon dioxide are the principal end products of controlled anaerobic digestion. These two gases are collectively called biogas. The biogas contains $60\~70\%$ methane and can be used directly as a fuel for heating or electrical power generation. Trace amounts of ammonia and hydrogen sulfide ($100\~300\;ppm$) are always present in the biogas stream. Anaerobic lagoons have found widespread application in the treatment of animal manure because of their low initial costs, ease of operation and convenience of loading by gravity flow from the animal buildings. The main disadvantage is the release of odors from the open surfaces of the lagoons, especially during the spring warm-up or if the lagoons are overloaded. However, if the lagoons are covered and gases are collected, the odor problems can be solved and the methane collected can be used as a fuel. Anaerobic digesters are air-tight, enclosed vessels and are used to digest manure in a well-controlled environment, thus resulting in higher digestion rates and smaller space requirements than anaerobic lagoons. Anaerobic digesters are usually heated and mixed to maximize treatment efficiency and biogas production. The objective of this work was to review a current anaerobic biological treatment of animal manure for effective new technologies in the future.

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