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Bloom Energy announced the initial results of its ongoing demonstration with Idaho National Laboratory (INL). With nearly 500 hours of full-load operation completed at the laboratory, Bloom’s high-temperature electrolyzer is producing hydrogen more efficiently than other commercially available electrolyzers, including PEM and alkaline.
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 resulting hydrogen will initially be used at the power plant, but it could eventually be sold to other industries. Earlier post.) Prairie Island.
million to 10 industry-led projects to advance nuclear technologies, including two aimed at expanding clean hydrogen production with nuclear energy. Westinghouse Electric Company, Front-End Engineering Designs and Investigative Studies for Integrating Commercial Electrolysis Hydrogen Production with Selected Light-Water Reactors.
Western Hydrogen Limited reported first production of hydrogen from its Molten Salt Gasification (MSG) pilot plant in Fort Saskatchewan, Alberta. The technology allows the production of high-pressure hydrogen without the need for compression and can use a variety of feedstocks, including renewables.
The US Department of Energy (DOE) is awarding $20 million in funding to a project to demonstrate technology that will produce clean hydrogen energy from nuclear power. This approach will allow clean hydrogen to serve as a source for zero-carbon electricity and represent an important economic product for nuclear plants beyond electricity.
Westinghouse Electric Company launched its newest nuclear technology, the AP300 small modular reactor (SMR), a 300-MWe (900MWth) single-loop pressurized water reactor. Includes additional capability to support district heating, desalination and hydrogen production.
Bloom Energy announced an agreement with Idaho National Laboratory (INL) to test the use of nuclear energy to produce clean hydrogen through Bloom Energy’s solid-oxide, high-temperature electrolyzer. This carbon-free hydrogen is obtained through electrolysis that is powered by nuclear generation.
The US Department of Energy (DOE) announced $33 million in funding to support innovative hydrogen and fuel cell research & development (R&D), infrastructure supply chain development and validation, and cost analysis activities. ( Efficient and innovative hydrogen production. This would be coordinated with the H2NEW consortium.
Researchers at Idaho National Laboratory have developed a new electrode material for a protonic ceramic electrochemical cell (PCEC) that can efficiently convert excess electricity and water into hydrogen. Water splitting reaction on oxygen electrode and PNC’s hydration. (a) The triple conducting oxide of PrNi 0.5
Source: Western Hydrogen. A consortium led by Canada-based Western Hydrogen Ltd. A consortium led by Canada-based Western Hydrogen Ltd. Hydrogen is necessary in the upgrading of oil sands bitumen into synthetic crude, but it is a costly and carbon-intensive part of the process, given current hydrogen production technologies.
The US Department of Energy (DOE) is seeking applications for projects in “Nuclear Coupled Hydrogen Production and Use.” This amendment was issued by the DOE Office of Nuclear Energy Light Water Sustainability Program, in coordination with DOE’s Office of Energy Efficiency and Renewable Energy Hydrogen and Fuel Cell Technologies Office.
using electrical or thermal energy to produce hydrogen from water or a methane source). These systems can produce high-value commodities such as hydrogen; power industrial processes; and provide more grid flexibility to increase the deployment of renewable energy technologies.
The Energy Department (DOE) recently announced $10 million, subject to appropriations, to support the launch of the HydroGEN Advanced Water Splitting Materials Consortium ( HydroGEN ). Currently, the Office of Energy Efficiency and Renewable Energy (EERE) funds research and development of low-carbon hydrogen production pathways.
Two awards will advance flexible operation of light-water reactors with integrated hydrogen production systems. is teaming with Idaho National Laboratory on a solid oxide electrolysis cell (SOEC) system demonstration and validation project to deliver a 250 kW SOEC turn-key sub-scale system with ultra-high efficiency and low cost.
The US Department of Energy’s Nuclear Energy University Program ( NEUP ) has awarded research funds to the MIT Energy Initiative, CORE POWER, and the Idaho National Laboratory for a three-year study into the development of offshore floating nuclear power generation in the US. Funding would come from the $1.2-trillion
This project is being led by Idaho National Labs, who has been working closely with Eden to develop the technology for hard rock permeability enhancement applications. This allows for reduced water consumption, energy comminution, and mining tailings. —Paris Smalls, CEO and co-founder of Eden.
The US Department of Energy (DOE) launched the Million Mile Fuel Cell Truck (M 2 FCT) and the H2NEW consortia to advance fuel cell truck and hydrogen production R&D. H2NEW will have the National Renewable Energy Laboratory and Idaho National Laboratory as co-leads.
gas-cooled reactor with commercial manufacturing, hydrogen production, and. safety of existing commercial light water reactor technology. production through the provision of hydrogen and/or the provision of. production through the provision of hydrogen and/or the provision of. Idaho National Laboratory.
The production of hydrogen production via water electrolysis using solid oxide electrolysis cells (SOECs) offers favorable thermodynamics and kinetics, and is considered the most efficient and low?cost cost option for hydrogen production from renewable energies. nickel is widely used in the hydrogen electrode for SOECs, P?SOECs
The selected research projects will help maximize the amount of renewable carbon and hydrogen that can be converted to fuels from biomass and improve the separation processes in bio-oil production to remove non-fuel components—further lowering production costs. The projects selected for negotiation include: Ceramatec (up to $3.3
Electrolysis uses electricity to split water into hydrogen and oxygen, the opposite of fuel cell operation. When solid oxide cells are used for electrolysis, they are capable of producing hydrogen much more efficiently than currently available technology.
Idaho National Laboratory. Highly Efficient Low-Thermal-Budget Hydrogen and Chemical Co-Production via an Electrochemical Activation of Propane, $100,000. NEL Hydrogen (Wallingford, Connecticut). DME as a Renewable Hydrogen Carrier: Innovative Approach to Renewable Hydrogen Production, $1,500,000. Pune, India).
A series of new reports from the Joint Institute for Strategic Energy Analysis (JISEA) and Idaho National Laboratory (INL) examines various hybrid system configurations to provide a basis to identify opportunities for clean energy use and examine the most economically viable configurations.
Algae cultures tend to be relatively dilute, and the energy requirement to remove water from the cultures can be a significant portion of the energy balance. saline water). Wind Technologies.
For Round 1, the small businesses and laboratories will collaborate on advancing a number of clean energy technologies, including water, wind, bioenergy, solar, buildings, vehicles, fuel cells, geothermal technologies, and advanced manufacturing. Water Power. million under Round 1 of the new Small Business Vouchers (SBV) pilot.
Infrastructure to be deployed includes three CNG stations, one combined B20/CNG/Electric station, one L/CNG station, one hydrogen station, and seven electric chargers. The Treasure Valley Clean Cities Coalition’s Idaho Petroleum Reduction Leadership Project. Total DOE award: $13,195,000. Total DOE award: $5,591,611.
Section 1413 of the FAST Act requires that the Secretary of Transportation designates national EV charging, hydrogen, propane, and natural gas fueling corridors, and the nomination process will ensure that the corridors proposed for designation will create a national network of alternative fuel facilities. Idaho National Laboratory.
Low Cost Roll-to-Roll Manufacturing of Reusable Sorbents for Energy and Water Industries, $150,000 Qualification of SAS4A/SASSYS-1 for Sodium-Cooled Fast Reactor Authorization and Licensing, $674,484 Advanced Reactor Concepts LLC, Chevy Chase, Md. Idaho National Laboratory. Idaho National Laboratory Wireless Project, $150,000.
Hedging its bets, the industry is exploring ammonia, batteries, and hydrogen, among other options for powering ships. It was in service from 1962 to 1972, but its pressurized light-water reactor (LWR) proved too complex and expensive for the ship to operate profitably. million (an eye-popping $495 million today).
In contrast, except for the PHEV, the alternative fuel vehicles—such as hydrogen, natural gas and battery electric vehicles—pose problems and limitations due to their single energy source and the lack of infrastructure for high-power energy distribution of their individualized fueling needs.
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