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The Hydrogen Council has published a new report, Path to Hydrogen Competitiveness: A Cost Perspective , demonstrating that the cost of hydrogen solutions will fall sharply within the next decade, sooner than previously expected. Significant cost reductions are expected across different hydrogen applications.
Hydrogen produced with renewable electricity could compete on costs with fossil fuel alternatives by 2030, according to a new report from the International Renewable Energy Agency (IRENA). The report— Green HydrogenCost Reduction: scaling up electrolyzers to meet the 1.5 Source: IRENA.
Australia-based Pure Hydrogen Corporation has entered an arrangement with PepsiCo Australia to trial a hydrogen-fueled prime mover at one of PepsiCo’s manufacturing sites in the City of Brisbane. Pure Hydrogen will supply PepsiCo with a Hydrogen Fuel Cell 160kW 6 x 4 Prime Mover (HFCV Prime Mover).
Africa can produce 50 million tons of green hydrogen a year by 2035, according to a new study by the European Investment Bank (EIB), International Solar Alliance and the African Union, with the support of the Government of Mauritania, HyDeal and UCLG Africa. This is equivalent to energy costs of US$60 a barrel.
Cemvita Factory announced multiple developments with its Gold Hydrogen business. Cemvita defines Gold Hydrogen as the biological production of hydrogen in the subsurface through the consumption of trapped or abandoned resources. The hydrogen production in this trial exceeded our expectations. billion in 2020.
China Petroleum & Chemical Corporation (Sinopec) officially launched China’s first methanol-to-hydrogen and hydrogen refueling service station in Dalian, China. The storage and transportation cost of methanol is also much lower than hydrogen, making methanol-to-hydrogen an attractive hydrogen production technology.
The Saudi Arabian Oil Company (Aramco) signed five agreements with leading French companies, including an agreement to explore a hydrogen-powered vehicle business with Gaussin , a pioneer in clean and intelligent transport solutions. Gaussin hydrogen-powered Dakar racer. Additional MoUs.
(SoCalGas) and H2U Technologies are testing a new electrolyzer, called the Gramme 50, for the production of green hydrogen. According to early analysis, the cost target of the new technology is half that of current electrolyzers and the total cost of ownership over its life is expected to be 75% less.
A new study from Juniper Research forecasts that the number of hydrogen vehicles in service globally will exceed 1 million in 2027, from just over 60,000 in 2022—substantial growth of more than 1,500%—with the bulk of the deployed vehicles in China and the Far East. —study co-author Olivia Williams.
The US Department of Energy (DOE) released its Hydrogen Program Plan to provide a strategic framework for the Department’s hydrogen research, development, and demonstration (RD&D) activities. 1/kg hydrogen for industrial and stationary power generation applications. On-board vehicular hydrogen storage at $8/kWh, 2.2
The North American Council for Freight Efficiency (NACFE) released its latest Guidance Report , Making Sense of Heavy-Duty Hydrogen Fuel Cell Tractors. Almost every day there is a new announcement about hydrogen fuel cell electric trucks. We published this report to help make sense of hydrogen for commercial freight movement.
Element 1 Corporation (e1NA), Zhejiang Methanol Hydrogen Technology (ZMHT) and Zhejiang Element 1 (e1China) have formed a joint venture company—Zhejiang Hydrogen One Energy Technology Co., — to drive methanol-based hydrogen generation technology and commercialize e1NA’s technology throughout Greater China.
Auckland (NZ) Transport is beginning a 2-year trial of a 3-axle hydrogen fuel cell bus.The trial will assess operational performance how operating costs compare to diesel and electric buses of similar configurations. The bus will be refuelled at the Ports of Auckland with green hydrogen. The trial will cost $1.175 million.
Using a hematite photocatalyst, a team led by researchers from Kobe University has succeeded in producing both hydrogen gas and hydrogen peroxide at the same time from sunlight and water. Hydrogen has gained attention as one of the possible next generation energy sources. under 600nm).
The Scottish Hydrogen Fuel Cell Freight Trial (SHyFT), led by Arcola Energy, has secured funding from the Department for Transport’s Zero Emission Road Freight program for the design of a trial of hydrogen fuel cell trucks, supported by a green hydrogen refueling infrastructure in Scotland.
The BMW Group will pilot the second generation of hydrogen fuel cell drives in a small series in the BMW i Hydrogen NEXT based on the current BMW X5 from 2022. The drive in the BMW i Hydrogen NEXT. The system performance of the BMW i Hydrogen NEXT comes to a total of 275 kW (374 hp) and ensures typical BMW driving dynamics.
A new report from Australia’s national science agency CSIRO shows that clean hydrogen can significantly reduce aviation emissions with potential benefits seen within five years. This involves the replacement of on-airport ground support equipment, currently running on liquid fuels and batteries, with hydrogen powered fuel cell alternatives.
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. Raven SR , a renewable fuels company, and Hyzon Motors Inc.,
Researchers from the Chinese Academy of Sciences and Tsinghua University have used a gallium, indium, tin and bismuth alloy to generate hydrogen, when placed in contact with an aluminum plate immersed in water. The hydrogen is then used in a PEM fuel cell. Hydrolysis of active metals is a widely known hydrogen production approach.
The Yuchai YCK16H hydrogen-fueled engine was successfully ignited in Yulin, Guangxi. liters and a maximum horsepower of 560 hp, is the largest hydrogen-fueled engine with the largest displacement and horsepower in China. The engine, with a displacement of 15.93
The US Department of Energy (DOE) released the US National Clean Hydrogen Strategy and Roadmap , a framework for accelerating the production, processing, delivery, storage, and use of clean hydrogen. Source: DOE. It also complements the massive $9.5-billion It also complements the massive $9.5-billion
The United States has an extensive network of approximately 3,000,000 miles of natural gas pipelines and more than 1,600 miles of dedicated hydrogen pipeline. The HyBlend team will test pipeline materials in varying concentrations of hydrogen at pressures up to 100 bar to assess their susceptibility to hydrogen effects.
Researchers from Japan’s NIMS (National Institute for Materials Science), the University of Tokyo and Hiroshima University have jointly conducted a techno-economic analysis for hydrogen production from photovoltaic power generation (PV) utilizing a battery-assisted electrolyzer. This approximately converts to US$1.92 to US$3.00/kg
A new total cost of ownership (TCO) study from the National Renewable Energy Laboratory (NREL) finds that battery-electric and fuel-cell electric commercial trucks could be economically competitive with conventional diesel trucks by 2025 in some operating scenarios. —Chad Hunter, lead author of the report and former NREL researcher.
Researchers at Argonne National Laboratory, with colleagues from Lawrence Berkeley, Oak Ridge, and National Renewable Energy labs, and the University of Tennessee, have published a comprehensive analysis of the total cost of ownership (TCO) for 12 sizes of vehicles ranging from compact sedans up to Class 8 tractors with sleeper cabs.
Although the thermocatalytic ammonia decomposition reaction (ADR) is an effective way to obtain clean hydrogen, it relies on the use of expensive and rare ruthenium (Ru)-based catalysts, making it not sustainable or economically feasible. A complete ammonia conversion to hydrogen was achieved at an economically feasible 450 ?C
Cummins and Tata Motors signed a Memorandum of Understanding (MoU) to collaborate on the design and development of low- and zero-emission propulsion technology solutions for commercial vehicles in India, including hydrogen-powered internal combustion engines (H2ICE), fuel cells (FC), and battery electric vehicle (BEV) systems. Cummins B6.7H
A Ford-led consortium is testing hydrogen fuel cell technology on the E-Transit in a small UK-based prototype fleet developed by Ford Pro. The UK-based project will establish if hydrogen fuel cell technology can help to deliver enhanced zero-emission-driving range for E-Transit customers with energy-intensive use cases.
million to 10 industry-led projects to advance nuclear technologies, including two aimed at expanding clean hydrogen production with nuclear energy. A well-established downstream syngas-to-synfuel conversion process, such as Fischer-Tropsch synthesis, converts the syngas to liquid synfuel for a total projected cost of less than $4/gallon.
million agreement will culminate in the development of five 650 kW hydrogen fuel cell systems for use in Piasecki’s eVTOL PA-890 Compound Helicopter, which is expected to be the world’s first manned hydrogen-powered helicopter. The initial $6.5-million Other players include major aircraft companies such as Airbus and Boeing.
million) to five demonstration phase projects for low-carbon hydrogen production. The hydrogen projects receiving funding are: Dolphyn. The project concerns the production of hydrogen at scale from offshore floating wind in deep water locations. HyNet – low carbon hydrogen plant. Acorn Hydrogen Project.
The research focuses on zero-carbon hydrogen and other low-carbon fuels as viable alternatives to diesel for the rail industry. Hydrogen as fuel has many advantages, but locomotive engines must be modified to ensure safe, efficient and clean operation. Hydrogen has been used in light-duty combustion engines.
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. —Zhiwen Ma, a senior engineer at NREL.
In a new piece of research, BloombergNEF (BNEF) finds that the levelized cost of hydrogen (LCOH 2 ) made from renewable electricity is set to fall faster than it previously estimated. These costs are 13% lower than BNEF’s previous 2030 forecast and 17% lower than its old 2050 forecast. MMBtu) by 2050 in most modeled markets.
Heliogen and Bloom Energy have successfully demonstrated the production of green hydrogen by integrating the companies’ technologies: Heliogen’s concentrated solar energy system and the Bloom Electrolyzer. Electricity accounts for nearly 80% of the cost of hydrogen from electrolysis. Source: Heliogen.
Solid-oxide-fuel-cell manufacturer Bloom Energy is entering the commercial hydrogen market by introducing hydrogen-powered fuel cells and electrolyzers that produce renewable hydrogen. Bloom’s technologies can be critical in enabling South Korea to execute on its government-mandated Hydrogen Economy Roadmap.
kWh/kg hydrogen (vs. With this level of cell energy efficiency—well above International Renewable Energy Agency’s (IRENA) 2050 target and significantly better than existing electrolyzer technologies—hydrogen production cost could be well below US$1.50/kg. 2 and 85 °C of only 1.51 —Gerry Swiegers. Hoang, A.L.,
The partners will collaborate in the development of ecosystems for heavy-duty trucks running on hydrogen, with the intent to demonstrate the attractiveness and effectiveness of trucking powered by clean hydrogen and the ambition to play a lead role in kickstarting the rollout of hydrogen infrastructure for transportation.
The automotive supplier is contributing an innovative hydrogen recirculation blower, the development of which is being funded by a six-digit euro sum. The task of Pierburg’s blower is to feed the hydrogen not consumed during the reaction in the fuel cell back into the stack.
Researchers at the University of Ontario Institute of Technology are developing a new method to dissociate water vapor into hydrogen gas by microwave-generated plasma (plasmolysis). A) An experimental setup for full microwave hydrogen production and (b) Schematic of the plasma reactor placed inside the microwave. Chehade et al.
Siemens Gamesa and Siemens Energy are joining forces to develop an innovative solution that fully integrates an electrolyzer into an offshore wind turbine as a single synchronized system to produce green hydrogen directly. The solution will lower the cost of hydrogen by being able to run off grid, opening up more and better wind sites.
Hyzon Motors ( earlier post ) signed a memorandum of understanding (MoU) with TotalEnergies that reinforces the two companies’ shared commitment to evaluate and develop hydrogen refueling and vehicle supply solutions for long-haul transport to customers across Europe. The MoU strengthens the existing commercial relationship.
Green, the Hoyt Hottel Professor in Chemical Engineering, is developing a technology that allows liquid organic hydrogen carriers (LOHCs) not only to deliver hydrogen to the trucks, but also to store the hydrogen onboard. Their findings were recently published in the ACS journal Energy and Fuels.
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