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Journal ArticleDOI

Techniques for transformation of biogas to biomethane

TLDR
A number of techniques have been developed to remove H 2 S from biogas, such as pressure swing adsorption, membrane separation, physical or chemical CO 2 -absorption as discussed by the authors.
Abstract
Biogas from anaerobic digestion and landfills consists primarily of CH 4 and CO 2 . Trace components that are often present in biogas are water vapor, hydrogen sulfide, siloxanes, hydrocarbons, ammonia, oxygen, carbon monoxide and nitrogen. In order to transfer biogas into biomethane, two major steps are performed: (1) a cleaning process to remove the trace components and (2) an upgrading process to adjust the calorific value. Upgrading is generally performed in order to meet the standards for use as vehicle fuel or for injection in the natural gas grid. Different methods for biogas cleaning and upgrading are used. They differ in functioning, the necessary quality conditions of the incoming gas, the efficiency and their operational bottlenecks. Condensation methods (demisters, cyclone separators or moisture traps) and drying methods (adsorption or absorption) are used to remove water in combination with foam and dust. A number of techniques have been developed to remove H 2 S from biogas. Air dosing to the biogas and addition of iron chloride into the digester tank are two procedures that remove H 2 S during digestion. Techniques such as adsorption on iron oxide pellets and absorption in liquids remove H 2 S after digestion. Subsequently, trace components like siloxanes, hydrocarbons, ammonia, oxygen, carbon monoxide and nitrogen can require extra removal steps, if not sufficiently removed by other treatment steps. Finally, CH 4 must be separated from CO 2 using pressure swing adsorption, membrane separation, physical or chemical CO 2 -absorption.

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Dissertation

Développement d’un procédé innovant d’épuration du biogaz par mise en oeuvre de contacteurs à membranes

TL;DR: In this article, the authors evaluate le contacteur a membranes, technologie issue du poumon artificiel, for le developpement d'absorption physique, robuste and repondant aux exigences de la filiere.
Journal ArticleDOI

Harvesting microalgal-bacterial biomass from biogas upgrading process and evaluating the impact of flocculants on their growth during repeated recycling of the spent medium

TL;DR: Zetag and cationic cellulose nanocrystals were effective in flocculating the biomass with efficiencies of over 90% during five successive harvesting cycles and could be useful in harvesting biomass under high alkaline conditions without detrimental effects on biomass growth.
Journal ArticleDOI

Deep eutectic solvents and conventional solvents as VOC absorbents for biogas upgrading: A comparative study

TL;DR: In this article , the efficiency of hydrophobic deep eutectic solvents (DESs) based on fatty acids and conventional absorbents for the absorption of three major VOCs found as impurities in biogas (toluene, limonene and octamethylcyclotetrasiloxane).
Journal ArticleDOI

Employment of biogas as pyrolysis medium and chemical feedstock

TL;DR: A review on the use of biogas either as pyrolysis medium or as renewable chemical feedstock can be found in this article , where the authors provide an overview of the current state of the art.
Journal ArticleDOI

Hydrogenotrophic biogas upgrading integrated into WWTPs: enrichment strategy

TL;DR: The aim of this work is to study a rapid hydrogenotrophic methanogenic culture enrichment strategy capable of limiting the organic degradation unbalance and allowing a fast start-up phase of the in situ biogas upgrading reactors, at pilot- or full-scale.
References
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Journal ArticleDOI

Energy use of biogas hampered by the presence of siloxanes.

TL;DR: In this paper, the authors reviewed the fundamentals of siloxanes and the current problems of the associated fouling and summarized the useable methods for siloxane abatement from biogas and made some recommendations towards preventive actions.
Journal ArticleDOI

Removal of siloxanes in biogases.

TL;DR: In contrast to biogas drying by refrigeration, which had a poor effect on siloxane content, the installation of meadow ore adsorption beds resulted in a significantsiloxane reduction of 31-75%, depending on the site studied.
Journal ArticleDOI

Novel fixed-site–carrier polyvinylamine membrane for carbon dioxide capture

TL;DR: In this paper, fixed-site-carrier membranes were prepared for the facilitated transport of CO2 by casting polyvinylamine (PVAm) on various supports, such as poly(ether sulfone) (PES), polyacrylonitrile (PAN), cellulose acetate (CA), and polysulfone (PSO).
Journal ArticleDOI

Chemical absorption of H2S for biogas purification

TL;DR: In this paper, an experimental study of purification of a biogas by removal of its hydrogen sulphide (H2S) content was carried out by means of chemical absorption in an iron-chelated solution catalyzed by Fe/EDTA, which converted H2S into elemental sulphur (S).
Journal ArticleDOI

Chemo-autotrophic biogas purification for methane enrichment: mechanism and kinetics

TL;DR: This gas stream treatment process improves the quality and caloric value of the biogas and increases the methane content through the use of a chemo-autotrophic methanogen, uncoupled methanogenesis techniques and hollow fiber membranes.
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