A deployable hydrogen reactor generates lifting gas via chemical reaction with water to inflate high-altitude balloons.
A reactor system recirculates fluid through interconnected reaction zones to reuse products as reactants.
A catalytic autothermal reformer converts hydrocarbons into synthesis gas using oxygen addition and medium-temperature shift treatment.
Electromagnetic radiation activates nanoporous carbon matrices to produce dry hydrogen, resolving water saturation issues in electrolyzer output.
Radioactive plasma dissociates water into hydrogen to bypass photovoltaic temperature limits, achieving higher efficiency via fuel cells.
Segmented high-temperature reactors paired with selective membranes resolve material stability and energy efficiency trade-offs in water splitting.
A gas generation device uses an external actuator to deform a diaphragm wall, moving the internal valve member between closed and open positions.
Porous foam structures reduce wall friction and mechanical stress while maintaining heat exchange surface area during hydrogen sulfide cracking.
A moisture-stabilized aluminum material with a dissolvable salt surface controls reactivity to produce hydrogen from impure water sources.
A solid-state formulation combines sodium borohydride with a water storage agent to generate hydrogen at mild temperatures.
A hydrogen production system uses a semi-permeable membrane to separate oxygen from hydrogen gas during nanoparticle pellet reaction.
A catalytic ammonia cracking process generates hydrogen and nitrogen without noncatalytic oxidation.
A system generates hydrogen on demand by controlling an exothermic reaction between metal and acid within a reaction chamber.
A piston compresses solid byproducts in a reactor cylinder while directing hydrogen gas through separate discharge circuits.
Recycles methanol synthesis purge gas as reformer fuel, cutting carbon dioxide emissions by replacing external hydrocarbon feed.
Converting carbon dioxide into a reactant via carbonate intermediates reduces energy consumption and emissions during sustainable hydrogen production.
Segmented heating isolates temperature-sensitive components from extreme heat, while remote monitoring enables rapid response to operational abnormalities.
Ammonia reforming systems decompose stored ammonia into hydrogen and nitrogen using combustion-heated and electrically-heated reformers.
A continuous process produces hydrogen gas using scrap metal and a Lewis acid in an aqueous medium.
Lithium aluminum hydride composition uses a catalytic metal additive to physically disperse the mixture and maintain hydrogen capacity.
A film with hydrogen-generating particles delays color change and fat oxidation by producing molecular hydrogen upon reacting with water.
Metal-doped ceria reduces oxygen to generate hydrogen from water vapor, maintaining a small temperature difference between steps to cut energy loss.
A membrane separator catalytically converts compressed ammonia gas into high-purity hydrogen permeate and nitrogen retentate.
Using lower pressure cooling medium eliminates leakage risks into high-pressure synthesis sections while maintaining efficient heat transfer.
A reformer system mixes preheated external hydrogen with hot feed gas to produce synthesis gas for direct reduced iron.
Annular blocks inside cylindrical units enable radial thermal decomposition, resolving irregular flow rates from suboptimal heat distribution.
A reforming exchanger system uses an intermediate shift reactor to convert carbon monoxide into carbon dioxide within the gas stream.
Low-pressure steam stripping recycles ammonia and methanol from process condensate, reducing emissions and increasing production capacity by 0.5%.
A power device manages reactant flow using a siphon tube and pressure transfer mechanism.
An external hydrogen separation chamber recovers thermal energy from hot gases to preheat incoming water, reducing net energy consumption for splitting.
Dissolving metal borohydride and hydroxide in ultrapure water creates a stable liquid carrier that eliminates compression energy losses during transport.
Plasma energy splits hydrogen molecules in supercritical fluid, reducing electrical power needs and eliminating carbon dioxide emissions.
Liquid carriers protect reactive metal particles from moisture and oxygen, eliminating hazardous powder handling risks during hydride production.
Laser ablation of aluminum plates enables portable hydrogen generation by removing passivation layers, eliminating the need for bulky storage tanks.
A boron hydrogen oxygen structure stores hydrogen via specific chemical bonds.
An integrated reactor system generates high-pressure hydrogen via water evaporation while an inert material absorbs nitrogen contaminants.
Cracking ammonia in retrofitted steam methane reformer tubes while managing nitrogen content for downstream pressure swing adsorption units.
Elevated pressure ammonia reforming using stable Ni-Co catalysts eliminates intermediate compression steps and simplifies the process flow.
Swelling absorbent material immobilizes liquid exhaust in a hydrogen generator, preventing blockages and maintaining orientation insensitivity.
Raw material purging removes steam from the hydrodesulfurizer before temperatures drop, preventing carbon deposition on the reformer catalyst.
A catalysed process using copper salts and nitrogen compounds to release hydrogen from silylated derivatives.
A flexible container stores activated aluminum in an inert atmosphere, preventing oxide coating fouling that limits shelf-life stability.
Maintaining reaction temperature between 70 and 100 °C reduces energy consumption while producing hydrogen from waste metal feedstock.
A two-stage ammonia cracking reactor extracts thermal energy from hot first-stage gas to drive a second adiabatic reaction.
A hydrogen supply system accelerates parahydrogen to orthohydrogen conversion via a catalyst chamber.
An integrated hydrogen supply system coordinates underground caverns and production plants to optimize real-time delivery.
An air feed device switches between high and low temperature routes to regulate reformer catalyst conditions.