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This award marks the first Advanced Class Gas Turbines in the industry specifically designed and purchased as part of a comprehensive plan to sequentially transition from coal, to natural gas and finally to renewable hydrogen fuel, and creates a roadmap for the global industry to follow. and Hitachi, Ltd.
While there is global potential to generate renewable energy at costs already competitive with fossil fuels, a means of storing and transporting this energy at a very large scale is a roadblock to large-scale investment, development and deployment. Generation 2 moves the Haber-Bosch process to renewable sources of hydrogen.
GM announced new commercial applications of its HYDROTEC fuel cell technology. They could also back up or temporarily replace grid-sourced electricity for residential and small commercial enterprises at times of power disruption. Renewable Innovations plans to deploy 500 EMPOWER rapid chargers across the country by the end of 2025.
the developer of a technology to produce renewable hydrogen using sunlight and water ( earlier post ), is working with Suzhou GH New Energy Co. HyperSolar, Inc., This in turn would lead the way to the company’s first pilot-scale solar-hydrogen farm. a971e208cf8868385b724c7daf30e9eb. >
million for the next phase of Gigastack, a new renewable hydrogen project, as part of the Department for Business, Energy and Industrial Strategy (BEIS) Hydrogen Supply Competition. Producing hydrogen has traditionally been associated with high carbon emissions, but by using renewable electricity—e.g., The UK has awarded £7.5
Raven SR plans to build modular waste-to-green hydrogen production units and renewable synthetic fuel facilities initially in California and then worldwide. This permits the control of the rotary reformer when there is water content or chemical makeup variation in the feedstock, such as in MSW. Raven SR Inc., Earlier post.).
Australia-based Hysata, which is commercializing capillary-fed electrolysis technology developed at the University of Wollongong ( earlier post ) has closed its oversubscribed Series A funding round of $42.5 The porous, hydrophilic separator sustains the flow rate required for water electrolysis. million AUD (US$30 million).
The facility also features an electricity cogeneration component allowing it to operate as a self-sufficient renewable energy producer. The Hugoton plant opening also marks the first commercial deployment of Abengoa’s proprietary enzymatic hydrolysis technology, which turns biomass into fermentable sugars that are then converted to ethanol.
Because these units can start and stop quickly and operate at partial loads, they have become increasingly important in areas with high shares of renewable electricity generation from wind and solar. Power plants with large reciprocating engines are often located in states with significant renewable resources, specifically wind generation.
In an open access paper published in Nature Communications , researchers from the University of Wollongong in Australia report that their capillary-fed electrolysis cell demonstrates water electrolysis performance exceeding commercial electrolysis cells, with a cell voltage at 0.5 kWh/kg in commercial electrolysis cells).
Minneapolis-based Xcel Energy will work with Idaho National Laboratory to demonstrate a system that uses a nuclear plant’s steam and electricity to split water. The new project is the first to pair a commercial electricity generator with high-temperature steam electrolysis (HTSE) technology. Earlier post.) Prairie Island.
and HCS Group GmbH, a long-time customer of Gevo, have signed a project memorandum of understanding (MOU) to develop and to build a renewable hydrocarbon facility at HCS Group’s site located in Speyer, Germany, which would utilize Gevo’s low-carbon sustainable aviation fuel (SAF) technology: Alcohol-to-Jet Synthetic Paraffinic Kerosene.
The hydrogen production rate achieved in this work represents a really encouraging step towards the commercial realization of this technology. Within this reactor, photoelectrochemical cells use solar energy to split water molecules into hydrogen and oxygen.
This project will complete key engineering design and demonstration tests to enable cost-competitive, carbon-neutral production of synthetic jet fuel and diesel using nuclear energy from existing light water reactors. 3M Company will develop an isotope recovery process to enable commercial deployment of molten salt reactors.
Anelise Lara, the head of Petrobras’ refining, announced that the company is ready to begin production of renewable diesel from soy or other edible oils at commercial scale. Petrobras recently successfully concluded tests on an industrial scale for the production of renewable diesel.
Vulcan Energy Resources will collaborate with DuPont Water Solutions,a leader in water filtration and purification, to test and to scale up Direct Lithium Extraction (DLE) solutions for Vulcan’s Zero Carbon Lithium extraction process. Earlier post.). Stringfellow and Patrick F.
Brookhaven National Laboratory, and the National Renewable Energy Laboratory (NREL) will work over the next few years to bring to market high-temperature proton exchange membrane (HT-PEM) fuel cells. A new partnership comprising Los Alamos National Laboratory, Advent Technology Holdings Inc.,
million to 16 water infrastructure projects. Modern technology has the potential to reduce energy use in aging water infrastructure, particularly in wastewater treatment, which demands up to 2% of domestic electricity use each year. The US Department of Energy (DOE) is awarding $27.5
physically moving the macroalgae between deep nutrient-rich water at night and shallow depths within the photic zone during the day to optimize growth. An open-access paper on their work appears in the journal Renewable and Sustainable Energy Reviews. The researchers used a depth-cycling approach—i.e.,
This is a carbon-free hydrogen production method that extracts hydrogen by decomposing water with electricity generated from nuclear power. It is evaluated as having a complete renewable energy-based green hydrogen value chain, from renewable energy project development to related equipment production and EPC to green hydrogen production.
Raven SR , a renewable fuels company, and Hyzon Motors Inc., a global supplier of hydrogen fuel cell-powered commercial vehicles, announced a joint venture to build up to 100 hydrogen hubs across the United States and globally. into locally produced, renewable hydrogen for Hyzon’s fleet of zero-emission commercial vehicles.
Bridgestone Americas has produced a run of demonstration tires made with 75% recycled and renewable materials (38% renewable, 37% recycled content), including synthetic rubber made with recycled plastics and natural rubber harvested from hevea and guayule grown domestically.
The contract is expected to make Air France KLM DGF’s largest European airline customer and lays the groundwork for expansion of this commercial relationship as DGF scales up production at the Louisiana and additional planned SAF production plants to be located in the United States and beyond. —Christopher J.
Honda has identified four core domains for the utilization of its fuel cell system: fuel cell vehicles (FCEV), commercial vehicles, stationary power stations and construction machinery. Commercial vehicles. Honda will actively engage in collaboration with other companies. Stationary power stations.
Neste, the leading provider of renewable diesel and sustainable aviation fuel, and an expert in delivering drop-in renewable chemical solutions, has acquired a minority stake in Sunfire GmbH , a developer of high-temperature electrolysis technology. The key technology in the Power-to-X platform is electrolysis.
The signing follows the two companies’ showcase of their green hydrogen technologies at the 23 August 2022 German-Canadian Atlantic Renewable Hydrogen Expo in Stephenville, Newfoundland, which was attended by Canadian Prime Minister Justin Trudeau and German Chancellor Olaf Scholz. The financial terms of the agreement were not disclosed.
The core of the team has co-founded and participated in a commercial and passenger vehicle company and reformed with Australia as a home, taking advantage of the rise of hydrogen as a potential major new energy source in Australia. H2X will locate in Regional New South Wales, focused initially in the Illawarra district.
The decarbonization of the transportation sector will require large volumes of renewable fuels. So far, renewable diesel and jet fuels are mainly derived from plant oils, but the EU Renewable Energy Directive limits the use of biofuel from food and feed crops since they do not meet sustainability requirements when produced at large scale.
AW-Energy Oy is entering the commercial hydrogen market by introducing a combined WaveRoller and HydrogenHub process for the production of green hydrogen. Green hydrogen is produced by using renewable energy (such as combining wave energy with solar) to power electrolysis that splits water into its constituent parts.
Available to customers as OXEFUEL, OXCCU’s sustainable aviation fuel is created by combining captured carbon dioxide and renewably-sourced green hydrogen through a novel iron-based catalyst, resulting in a more cost-effective and decarbonized alternative to fossil-based jet fuel for commercial airlines.
The method makes green ammonia from air, water and renewable electricity and does not require the high temperatures, high pressure and huge infrastructure currently needed to produce this essential compound. She and her colleagues therefore looked at how to produce it cheaply, on a smaller scale and using renewable energy.
Renewable hydrogen systems manufacturer Ways2H Inc. announced the completion of a facility in Tokyo that will convert sewage sludge into renewable hydrogen fuel for fuel cell mobility and power generation. A new facility in Tokyo that will convert sewage sludge into renewable hydrogen gas for fuel-cell vehicles is nearing completion.
The Australian Renewable Energy Agency (ARENA) is awarding Alcoa of Australia $8.8 million) toward testing the potential use of renewable energy in a Mechanical Vapor Recompression (MVR) process for alumina refining. Alcoa of Australia is currently conducting technical and commercial studies to adapt MVR technology to refining.
A new way of anchoring individual iridium atoms to the surface of a catalyst significantly increased its efficiency in splitting water molecules, scientists from the Department of Energy’s SLAC National Accelerator Laboratory and Stanford University reported in an open-access paper in Proceedings of the National Academy of Sciences (PNAS). …we
H2Pro is developing a new way of producing hydrogen from water. Similar to electrolysis, its technology, E-TAC (Electrochemical – Thermally Activated Chemical)—developed at Technion, Israel Institute of Technology—uses electricity to split water into hydrogen and oxygen. HHV) inside the reactors and a 95% system efficiency.
In eFuels plants, the feedstock is carbon dioxide, water, and power. The water is converted into hydrogen by means of electrolysis and the synthesis gas is produced from carbon dioxide and hydrogen. The technology and catalyst are in commercial operation in various plants across the globe.
Proceeds will be used to advance the development of commercial-scale applications to decarbonize ammonia production and unlock its potential as a zero-carbon energy carrier. Starfire Energy’s Rapid Ramp NH 3 ammonia synthesis technology produces zero carbon ammonia using only renewable energy, air, and water as inputs.
Vulcan will pump hot lithium-rich brine from production wells up to the surface, then use the co-generated geothermal energy to drive lithium extraction using its proprietary technique, with excess renewable energy as a saleable by-product that can be fed back into the grid. —CEO of EIT InnoEnergy Germany, Christian Müller.
With efficiencies above 90%, Topsoe’s proprietary SOEC electrolyzers offer superior performance in electrolysis of water into hydrogen—e.g., The SOEC is a ceramic cell that uses electricity to split water molecules (H 2 O) into hydrogen (H 2 ) and oxygen (O 2 ). —Amy Hebert, Chief Commercial Officer of Haldor Topsoe.
The LHM was produced from Vulcan’s sorption pilot plant, located at a geothermal renewable energy plant in the Upper Rhine Valley in Germany, with downstream electrolysis processing offsite, as per Vulcan’s planned commercial Zero Carbon Lithium Project. Vulcan is targeting Phase 1 commercial production for CY2024.
Eneos’ Direct MCH uses an electrolyzer to produce MCH directly from water. Water is oxidized on the anode catalyst to produce oxygen, protons, and electrons. ENEOS has worked to scale up electrolyzers using Direct MCH technology in order to mass-produce MCH derived from renewable energy (Green MCH).
The California North Coast wind resource is one of the best in the world with high renewable energy potential and wind speeds consistent and favorable for commercial development, the report notes. Plans for renovations to prepare for offshore wind activities are already underway at the Port of Humboldt Bay with $10.5
Perovskite materials may hold the potential to play an important role in a process to produce hydrogen in a renewable manner, according to an analysis from scientists at the National Renewable Energy Laboratory (NREL). Electrolysis needs electricity to split water into hydrogen and oxygen. STCH uses the entire spectrum.
reports that it has achieved full conversion ( 99% + ) of king grass cellulosic material to water soluble sugars on a repeatable basis. This result provides the company with a strong basis to upscale to the semi-commercial 5 th generation system and later to the full commercial-scale, 6 th generation. Blue Biofuels, Inc.
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