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Gas liquid, two-phase flow through channels of a polymer electrolyte fuel cell (PEFC) is of great interest as reactant oxygen is supplied and liquid product water is removed via these PEFC channels.
The electrochemical step affected the enzymatic catalysis in two ways: the reactant oxygen was regenerated, and the product, hydrogen peroxide which is a glucose oxidase inhibitor, was consumed.
In the case of VMo and VMoNb oxides a distinct difference between ethane yields was observed at given conversion of limiting reactant (oxygen).
The existence of spacious, largely hydrated, polyoxometallate monolayers on platinum does not block access of reactant (oxygen) to the catalytic Pt sites.
It was found that with bulk V2O5 considerable amounts of H2 are produced above 400 °C, the temperature at which the limiting reactant, oxygen, is totally consumed.
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Designing a UV-PCO system for a building requires full understanding of its performance, which strongly depends on the UV intensity field, types and concentration levels of reactants, oxygen and moisture levels, temperature, reflectance of duct surfaces, system configuration, orientation, air stream characteristics like temperature, humidity, air velocity and mixing, just to mention a few.
Gasification processes use one or a combination of three reactant gases: oxygen (O2), steam (H2O), and hydrogen (H2).
For this type of reaction one of the reactants, namely oxygen, is a constituent of the catalyst and the oxygen coverage is assumed to be one at the start of the transient.
Enriching the reactant mixture with oxygen causes a significant increase in the conversion of n-octane.
Enriching the reactant mixture with oxygen (strong oxidative environment) increased the conversion, but at the same time enhanced the formation of the combustion products (carbon oxides).
Experiments were carried out to determine the range of reactant (ethylene and oxygen) concentrations wherein oscillations were possible.
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