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In Germany, BSE Engineering and the Institute for Renewable Energy Systems at Stralsund University of Applied Sciences (IRES) have demonstrated the conversion of wind power into renewable methanol. The team uses green electricity to split water into hydrogen and oxygen in an electrolysis step.
Norwegian state-owned energy company Equinor and Germany-based energy company RWE have agreed to work together to develop large-scale value chains for low carbon hydrogen. Building production facilities in Norway to produce low carbon hydrogen from natural gas with CCS. Export of hydrogen by pipeline from Norway to Germany.
China-based Dongfang Electric Corporation (DEC) reported successful testing of non-desalinated seawater electrolysis technology for hydrogen production powered by offshore wind. The floating hydrogen production platform Dongfu One is sited in an offshore wind farm in East China’s Fujian province. —Xie et al.
Rolls-Royce is further developing its mtu gas engine portfolio for power generation and cogeneration to run on hydrogen as a fuel and thus enable a climate-neutral energy supply. Already today, gensets powered by mtu Series 500 and Series 4000 gas engines can be operated with a gas blending of 10% hydrogen.
Rolls-Royce and easyJet report the world’s first run of a modern aero engine on hydrogen. The ground test was conducted on an early concept demonstrator using green hydrogen created by wind and tidal power. The success of this hydrogen test is an exciting milestone.
CMAL) to partner in designing a hydrogen fuel-cell sea-going passenger and car ferry—a first for Europe. along with associated hydrogen storage and bunkering arrangements. along with associated hydrogen storage and bunkering arrangements. Hydrogen storage and piping. Source: HYSEAS III. Lithium-ion batteries.
The consortium behind the WESTKÜSTE100 project received the go-ahead and funding approval from the Federal Ministry of Economic Affairs and Energy that will make it Germany’s first hydrogen project included in the “real-world laboratories fostering the energy transition” program. —refinery managing director Jürgen Wollschläger.
ReactWell , LLC, has licensed a novel waste-to-fuel technology from the Department of Energy’s Oak Ridge National Laboratory to improve energy conversion methods for cleaner, more efficient oil and gas, chemical and bioenergy production. —ORNL’s Adam Rondinone, co-inventor of the carbon dioxide-to-ethanol catalyst.
Ørsted, the world’s leading offshore wind developer, together with the major industrial companies in the North Sea Port cluster, have launched the SeaH2Land vision for a gigawatt scale project to reduce carbon emissions in the Dutch-Flemish industrial cluster with renewable hydrogen.
A study by a team of researchers from Technische Universität Berlin (TUB) and Fritz-Haber-Institut der Max-Planck-Gesellschaft has found that direct seawater splitting for hydrogen production has substantial drawbacks compared to conventional water splitting and offers almost no advantage. Additionally, H 2 O is needed for water splitting.
Russian Rosatom State Atomic Energy Corporation and the EDF Group signed a strategic cooperation agreement in March 2021 to develop green hydrogen in Russia and Europe. Hydrogen energy is one of Rosatom’s R&D priorities. Its objective is to develop low-carbon sources of energy, including wind energy.
Energy company SGH2 is bringing the world’s biggest green hydrogen production facility to Lancaster, California. SGH2’s gasification process uses a plasma-enhanced thermal catalytic conversion process optimized with oxygen-enriched gas.
million to projects to develop hydrogen refueling infrastructure in California ( PON-13-607 ). All projects funded under this solicitation must support the future deployment of FCVs and hydrogen internal combustion engine vehicles (HICEVs). 100% Renewable Hydrogen Refueling Station Competition. Mobile Refueler Competition.
Reintroducing airships into the world’s transportation mix could contribute to lowering the transport sector’s carbon emissions and can play a role in establishing a sustainable hydrogen based economy, according to a new IIASA-led study. The open-access paper is published in the journal Energy Conversion and Management: X.
Expleo modeled its system-of-systems solution on the multi-tasking Bibby Wavemaster 1 , a vessel used to service offshore wind farms. To achieve the desired reduction in GHGe, we partnered SOFC with a novel carbon capture and storage system, enabling a vessel to use its captured CO 2 and green hydrogen to synthesize e-methanol.
Rice University researchers and colleagues at Princeton and Syzygy Plasmonics have developed a plasmonic photocatalyst for the direct decomposition of hydrogen sulfide gas into hydrogen and sulfur, as an alternative to the industrial Claus process. A paper on the work appears in ACS Energy Letters. Bayles, Henry O. Carter and Naomi J.
The Liquid Wind consortium in Sweden has selected Worley to provide basic engineering services for one of the world’s first commercial-scale eMethanol facilities. Worley brings extensive experience with similar projects, including hydrogen, carbon capture and eFuel.
UK-based ULEMCo has worked with Yorkshire Water to produce what is believed to be the first water tanker anywhere to operate on hydrogen fuel. tonne bowser has been converted from a standard truck to use hydrogen dual fuel, an approach that allows fleet managers to transition more quickly to low carbon operation.
Sundsvall Energi will partner with Liquid Wind to be the host and provide carbon dioxide for the second commercial-scale—100,000 t—electrofuel facility in Sweden. Biogenic carbon dioxide from the Sundsvall energy facility will be captured and combined with renewable hydrogen to generate green electrofuel, eMethanol.
The electrocatalytic conversion of CO 2 using renewable energy could establish a climate-neutral, artificial carbon cycle. Excess energy produced by photovoltaics and wind energy could be stored through the electrocatalytic production of fuels from CO 2. V vs. reversible hydrogen electrode (RHE), which can be maintained for at least 3?months.
The authors highlight three possible strategies for CO 2 conversion by physico-chemical approaches: sustainable (or renewable) synthetic methanol; syngas production derived from flue gases from coal-, gas- or oil-fired electric power stations; and photochemical production of synthetic fuels. This same analysis (Pearson et al. Jiang et al.
The new facility will upcycle carbon dioxide emissions and combine this with green hydrogen, made from renewable electricity and water to produce eMethanol. Once operational, the facility is expected to produce 50,000 tons of eMethanol starting in 2024.
At this year’s Africa Aerospace & Defence (AAD) expo at AFB Waterkloof in Centurion, Rheinmetall AG is presenting turnkey, mobile modular solutions for producing, storing and transporting CO 2 -free hydrogen. Wind and Hydropower can also be used to produce the required electricity.
MAN Energy Solutions and the Fraunhofer Institute for Surface Engineering and Thin Films (IST) have published their analysis of the framework conditions for the future supply of green hydrogen to the Salzgitter steel site near Hannover. Of course, we will still need imported hydrogen, and in large quantities, for two reasons.
A team at MITEI (MIT Energy Initiative) has found that hydrogen-generated electricity can be a cost-competitive option for backing up wind and solar. Applying the model, they found that the average LCOE associated with meeting this seasonal imbalance is $2400/MWh using a HFGT fueled with green hydrogen and $3000/MWh using a LI.
Air Products has been awarded a contract with India’s University of Petroleum and Energy Studies (UPES) to build the country’s first solar-powered renewable hydrogen fueling station. Once complete, the UPES project will mark the third Air Products hydrogen fueling station operating in India.
Left, global light-duty fleet in the electric-favoring case; right, the hydrogen-favoring case. In both electric- and hydrogen-favoring cases, availability of low-carbon electricity and hydrogen prolonged the use of petroleum-fueled ICE vehicles. Top, without CCS and CSP; bottom, with CCS and CSP. Credit: ACS, Wallington et al.
Air Products has signed a contract with SK Energy to construct a hydrogen fueling station for a novel energy project to be based in World Cup Park in Seoul, South Korea. The hydrogen fueling station to be onstream in July 2010 will supply hydrogen produced solely from landfill gas to fuel a fleet of vehicles.
The feed-stock reduction is achieved primarily by supplementing the process with oxygen and hydrogen produced by water electrolysis units that are powered by clean wind and solar generated electricity. DGF replaces the coal gasification used by others with biomass gasification and natural gas reforming.
Mexico-based global construction materials company CEMEX is partnering with integrated chemicals and energy company Sasol ecoFT and renewable energy company ENERTRAG to combine CO 2 with hydrogen to produce sustainable aviation fuel. The consortium will source green hydrogen generated exclusively from wind and solar energy from ENERTRAG.
Efficiency improvements and carbon emissions reduction in energy conversion and storage technologies. HPC for optimizing process parameters to control material evolution in seamless induction hardening of wind turbine main shaft bearings. All Selectees. The Timken Company. Gopher Resource LLC - Phase II. Siemens Energy. 300,000 .
Partners from Germany and Finland in the SOLETAIR project are building a compact pilot plant for the production of gasoline, diesel and kerosene from solar energy, regenerative hydrogen and carbon dioxide. An electrolysis unit developed by Lappeenranta University of Technology (LUT) produces the required hydrogen by means of solar power.
Haldor Topsoe has joined a hydrogen and sustainable fuel project based on electrolysis in the Greater Copenhagen Area. The partnership consists of leading Danish companies covering the whole value chain for the production, distribution, and consumption of renewable hydrogen and sustainable fuels. —Roeland Baan, Topsoe’s CEO.
Recent breakthroughs in separations and catalysis, along with long-trend reductions in solar and wind electricity costs, have significantly increased the potential for cost-competitive renewable fuels from direct air capture (DAC) of CO 2. TW of combined solar and wind capacity for the United States alone will be required.
million for new hydrogen refueling stations in 25 selected areas. The goal is to expand the network of publicly accessible hydrogen fueling stations to serve the current population of fuel cell vehicles (FCVs) and to accommodate the planned large-scale roll-out of FCVs commencing in 2015. million, whichever is less.
Using the surplus electricity from wind or solar power plants to generate hydrogen is a possible option for energy storage. An additional subproject investigates the recycling of the hydrogen in the production of solar cells. Wind is a significant component of the energy mix of the future.
Project Volt Gas Volt is based on a long-term financing plan and the use of existing technologies for the large-scale conversion of surplus renewable electricity to methane, with subsequent reuse. Project VGV uses surplus electricity generated by renewable and nuclear sources to produce hydrogen via electrolysis. Click to enlarge.
The US Department of Energy (DOE) Fuel Cell Technologies Office’ (FCTO) 2014 Hydrogen and Fuel Cells Program Annual Progress Report ( earlier post )—an annual summary of results from projects funded by DOE’s Hydrogen and Fuel Cells Program—described progress in the field of hydrogen production. Source: DOE.
One way to mitigate high feedstock cost is to maximize conversion into the bioproduct of interest. This maximization, though, is limited because of the production of CO 2 during the conversion of sugar into acetyl-CoA in traditional fermentation processes. Acetogens are anaerobic bacteria, which cannot grow in oxygenated environments.
The US Department of Energy (DOE) Fuel Cell Technologies Office’ (FCTO) 2014 Hydrogen and Fuel Cells Program Annual Progress Report ( earlier post )—an annual summary of results from projects funded by DOE’s Hydrogen and Fuel Cells Program— described a number of advances in the field of hydrogen storage.
Carbon Clean, a developer of low-cost carbon capture technology, has entered into an agreement with power-to-fuels developer Liquid Wind. Within the Liquid Wind facility, the CO 2 will then be combined with renewable hydrogen to form the carbon-neutral liquid fuel, eMethanol. The partnership has ambitions for future sites.
Generation 2 moves the Haber-Bosch process to renewable sources of hydrogen. Generation 3 avoids the need for the Haber-Bosch process entirely by direct electrochemical conversion of N 2 to NH 3. Gen 2 renewable ammonia is produced from H-B technology but employs renewable, rather than fossil-fuel-sourced, hydrogen.
Low Total Cost of Hydrogen by Exploiting Offshore Wind and PEM Electrolysis Synergies. This project will directly couple and evaluate the use of an electrolyzer stack with an offshore wind turbine for hydrogen production. Conversion of Biogas to Liquid Fuels on Superior Catalysts. NexTech Materials, Ltd.
Experimental setup of the solar heated solid oxide electrolyzer system for hydrogen production. 2 a steam conversion rate of 70% at 93% electrical electrolyzer efficiency was achieved. Water electrolysis is considered as a promising pathway for the production of sustainable hydrogen to be used as such an energy carrier.
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