Hydrogen production in a reversible flow filtration combustion reactor

The noncatalytic process of syngas production by means of partial oxidation of methane by air oxygen in a reversible flow filtration combustion reactor has been investigated experimentally. We have investigated the influence of the equivalent ratio and the specific mass flow of the fuel mixture on t...

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Veröffentlicht in:Journal of engineering physics and thermophysics 2011-11, Vol.84 (6), p.1296-1303
Hauptverfasser: Dmitrenko, Yu. M., Klevan, P. A.
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Klevan, P. A.
description The noncatalytic process of syngas production by means of partial oxidation of methane by air oxygen in a reversible flow filtration combustion reactor has been investigated experimentally. We have investigated the influence of the equivalent ratio and the specific mass flow of the fuel mixture on the composition of conversion products and the maximum temperature in the reaction zone. The optimal conditions for the process providing the most effective conversion of methane to syngas have been established. The concentration of hydrogen is maximal for the equivalent ratio γ = 2.8 and the specific flow rate g  = 1.8 kg / (m 2 ⋅s).
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subjects Classical Mechanics
Combustion
Complex Systems
Concentration (composition)
Conversion
Engineering
Engineering Thermodynamics
Equivalence
Filtration
Heat and Mass Transfer
Hydrogen
Hydrogen as fuel
Industrial Chemistry/Chemical Engineering
Methane
Optimization
Production processes
Reactors
Thermodynamics
title Hydrogen production in a reversible flow filtration combustion reactor
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