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Alkali metal modified catalytic performances as electronic promoter that promoted the formation of light olefins.
The heating rate presents noticeable consequences on the pyrolysis products distribution with a larger formation of light species while heavier ones are favoured under oxidative pyrolysis conditions.
Ni/HZSM-5 catalysts exhibit a higher selectivity toward the formation of light olefins, whereas for Mo/HZSM-5 catalysts the product distribution is shifted toward aromatics.
The shifting of proton results in the formation of carbonium ions which favors the FCC reaction towards the formation of light olefins such as propylene and butylene [37, 38].
Full conversion of the diesel fuel could be achieved under all test conditions, however, formation of light hydrocarbons started after some hours of operation at lower S/C ratios.
Obtained products were served as catalytic carriers for propane dehydrogenation reaction so as to promote the physicochemical properties of ZSM-5 support, enhance the propylene yield and reduce the formation of light compounds.
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In addition to this formation of lighter atoms, on average between 2.5 and 3 free neutrons are emitted in the fission process, along with considerable energy.
The formation of light-absorbing and emitting species during the heating process has been monitored by a combination of wide field and confocal fluorescence microscopy.
Lastly, through kirigami combining both folding and cutting in the form of line cuts or cut-outs, we demonstrated the spontaneous formation of light-responsive, more complex pop-up kirigami structures.
Such sudden increases can arise from rapid boiling of more volatile oil components or from the formation of lighter cracked components.
The H2 formed in the reaction decreases CH4 pyrolysis rates and equilibrium conversions and it favors the formation of lighter products.
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