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Additionally, these conventional anaerobic digesters are difficult to collect and utilize the produced biogas, and the biogas mixture containing methane and carbon dioxide produced from open lagoons and tanks directly escaped into the atmosphere.
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Characterization data clearly demonstrated that NiCu alloy forms by reduction of NiCuOx mixed oxide patches, while catalytic testing showed carbon-free operation at 800 °C (GHSV = 6600 h−1) when "CO2-rich" biogas mixtures are used.
Results revealed that NiCu/CGO system is a promising catalyst for the conversion of biogas mixtures at temperature suitable to be used in low temperature solid oxide fuel cell (LT-SOFC).
Synthetic biogas mixtures were decomposed in the presence of a Ni catalyst at different temperatures and the SG thus produced were further tested as fuel in a specifically designed SI engine, whereas the BCNFs were subjected to heat treatment to graphitize.
These systems produce biogas (a mixture of CH4 and CO2) that is mainly used for cooking.
The sludge then flows into a second tank, where the dissolved matter is converted by other bacteria into biogas, a mixture of carbon dioxide and methane.
The reaction outgas of the biogas (model mixture of 35 mol% CO2 and 75 mol% CH4) reforming test at 750 °C was composed of 20 vol% of H2.
Biogas, a mixture of different gases produced by anaerobic fermentation of organic matter from methanogenic bacteria, mainly constitutes methane (50 65 %) and CO2 (25 45 %) (Sharma 2011).
Biogas, a mixture of mainly methane and carbon dioxide, is produced during the anaerobic digestion of biomass by a complex microbial network.
In favour of anaerobic treatment, biodegradation is carried out by the microorganisms, which can degrade organic compounds to carbon dioxide and sludge under aerobic conditions and to biogas (a mixture comprising chiefly CO2 and CH4) under anaerobic conditions (Ghasimi et al. 2010).
ASPEN Plus release has been employed to simulate the combustion reactions of premixed biogas air mixtures.
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