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Methane Production via High Temperature Steam Electrolyser from Renewable Wind Energy: A German Study
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作者 Nathalie Monnerie Anis Houaijia +1 位作者 martin roeb Christian Sattler 《Green and Sustainable Chemistry》 2015年第2期70-80,共11页
The transformation of the energy supply needs further development of energy storage technologies in order to integrate the fluctuating renewable energy. The conversion of renewable wind power into green methane offers... The transformation of the energy supply needs further development of energy storage technologies in order to integrate the fluctuating renewable energy. The conversion of renewable wind power into green methane offers a technical approach with the necessary storage and transport capacities. Thus, the concept of Power-to-Gas which is illustrated here by the coupling of wind energy with a High Temperature Steam Electrolyser (HTSE) and a methanation unit enabling the production of green fuel like hydrogen and methane is presented is this paper. In fact, hydrogen can be used as energy carrier as well for the production of green fuels, like methane which is simpler to store and to transport and which can be thus used as storage medium for the stabilization of the electrical power supply as well as fuel for transport and heat sector. Its production using high temperature electrolysis is able to reduce the carbon dioxide emissions if performed with renewable resources. This is the case if the electricity needed for the HTSE comes from a wind turbine and the CO2 needed for the methanation step comes from biogas. For such a plant, the location and the boundary conditions have a great importance. Thus, this study considers the coupling of a HTSE with a wind turbine and a methanation reactor, and focuses about the site selection, depending of the geographical and economic considerations. The study is limited first to the European area. Schleswig-Holstein is found as a very good location for this plant. It is one of the regions with the largest wind reserves in Germany. This region has also available a lot of biogas and meets all the other necessary requirements. 展开更多
关键词 METHANE Hydrogen High Temperature STEAM ELECTROLYSIS Wind Energy BIOGAS
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Coupling of Wind Energy and Biogas with a High Temperature Steam Electrolyser for Hydrogen and Methane Production
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作者 Nathalie Monnerie martin roeb +1 位作者 Anis Houaijia Christian Sattler 《Green and Sustainable Chemistry》 2014年第2期60-69,共10页
The production of environment friendly green fuels is based on energy from renewable sources. Among the renewable sources, wind power is a very growing power technology. An example which has been discussed very widely... The production of environment friendly green fuels is based on energy from renewable sources. Among the renewable sources, wind power is a very growing power technology. An example which has been discussed very widely is hydrogen which is an ideal fuel for a fuel cell. Hydrogen is the energy of the future. It will be used as energy carrier as well as reactant to produce green fuels, like methane which is easier to handle. Direct coupling of a High Temperature Steam Electrolyser (HTSE) with a wind turbine can be used to generate hydrogen. Indeed performing the electrolysis process at high temperatures offers the advantage of achieving higher efficiencies compared to the conventional water electrolysis. The hydrogen produced can be then reacted with the CO2 content of biogas to form methane as green fuel. Thus, the concept presented in this paper illustrates the potential of the HTSE technology coupled with a wind turbine, this system being combined with biogas in a methanation unit. Developing scenarios and flow sheets and using mass and energy balance, the technical performance of the concept is investigated. A plant capacity of 10 MWel is considered. An annual production of 1104 metric tons per year (Mt/a) hydrogen and thus of 5888 Mt/a methane is reached. The overall plant efficiency is calculated to be 38%. The combination of wind power and biogas offers thus many advantages which can facilitate the penetration of the wind resource and the progression to the hydrogen economy. 展开更多
关键词 HYDROGEN METHANE High Temperature STEAM ELECTROLYSIS Wind Energy BIOGAS
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Thermogravimetric Analysis of Zirconia-Doped Ceria for Thermochemical Production of Solar Fuel
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作者 Friedemann Call martin roeb +4 位作者 martin Schmücker Hélène Bru Daniel Curulla-Ferre Christian Sattler Robert Pitz-Paal 《American Journal of Analytical Chemistry》 2013年第10期37-45,共9页
Developing an efficient redox material is crucial for thermochemical cycles that produce solar fuels (e.g. H2 and CO), enabling a sustainable energy supply. In this study, zirconia-doped cerium oxide (Ce1-xZrxO2) was ... Developing an efficient redox material is crucial for thermochemical cycles that produce solar fuels (e.g. H2 and CO), enabling a sustainable energy supply. In this study, zirconia-doped cerium oxide (Ce1-xZrxO2) was tested in CO2-splitting cycles for the production of CO. The impact of the Zr-content on the splitting performance was investigated within the range 0 ≤ x < 0.4. The materials were synthesized via a citrate nitrate auto combustion route and subjected to thermogravimetric experiments. The results indicate that there is an optimal zirconium content, x = 0.15, improving the specific CO2-splitting performance by 50% compared to pure ceria. Significantly enhanced performance is observed for 0.15 ≤ x ≤ 0.225. Outside this range, the performance decreases to values of pure ceria. These results agree with theoretical studies attributing the improvements to lattice modification. Introducing Zr4+ into the fluorite structure of ceria compensates for the expansion of the crystal lattice caused by the reduction of Ce4+ to Ce3+. Regarding the reaction conditions, the most efficient composition Ce0.85Zr0.15O2 enhances the required conditions by a temperature of 60 K or one order of magnitude of the partial pressure of oxygen p(O2) compared to pure ceria. The optimal composition was tested in long-term experiments of one hundred cycles, which revealed declining splitting kinetics. 展开更多
关键词 Water Splitting CO_(2)Splitting Thermochemical Cycle CERIA CO Solar Fuels Hydrogen H_(2) ZIRCONIA Synthesis Gas
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Coupling Heat and Electricity Sources to Intermediate Temperature Steam Electrolysis
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作者 martin roeb 《Journal of Energy and Power Engineering》 2013年第11期2068-2077,共10页
关键词 电解池 耦合 蒸汽 二氧化碳排放 操作温度 中温 能量转换技术 固体氧化物
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Methanol from CO2 and Solar Energy A Literature Review
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作者 Sven Kluczka Mark Schmitz +1 位作者 martin roeb Christiane VaeBen 《Journal of Energy and Power Engineering》 2012年第3期361-368,共8页
关键词 甲醇合成 二氧化碳 太阳能 文献综述 生物技术 合成甲醇 催化方法 子流程
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