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A novel approach of modeling continuous dark hydrogen fermentation

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논문

A novel approach of modeling continuous dark hydrogen fermentation

학술지

Bioresource technology : biomass, bioenergy, biowastes, conversion technologies, biotransformations, production technologies

저자명

Alexandropoulou, Maria; Antonopoulou, Georgia; Lyberatos, Gerasimos

초록

<P><B>Abstract</B></P> <P>In this study a novel modeling approach for describing fermentative hydrogen production in a continuous stirred tank reactor (CSTR) was developed, using the Aquasim modeling platform. This model accounts for the key metabolic reactions taking place in a fermentative hydrogen producing reactor, using fixed stoichiometry but different reaction rates. Biomass yields are determined based on bioenergetics. The model is capable of describing very well the variation in the distribution of metabolic products for a wide range of hydraulic retention times (HRT). The modeling approach is demonstrated using the experimental data obtained from a CSTR, fed with food industry waste (FIW), operating at different HRTs. The kinetic parameters were estimated through fitting to the experimental results. Hydrogen and total biogas production rates were predicted very well by the model, validating the basic assumptions regarding the implicated stoichiometric biochemical reactions and their kinetic rates.</P> <P><B>Highlights</B></P> <P> <UL> <LI> The novel model accounts for the different rates of the key metabolic reactions. </LI> <LI> The model identifies the active pathways in a particular situation. </LI> <LI> The pathway of H<SUB>2</SUB> production from sugars through acetate is probably not active. </LI> <LI> Hydrogen production is strongly associated with butyrate production in this work. </LI> <LI> Homoacetogenesis is probably not active. </LI> </UL> </P> <P><B>Graphical abstract</B></P> <P>[DISPLAY OMISSION]</P>

발행연도

2018

발행기관

Elsevier

ISSN

0960-8524

250

페이지

pp.784-792

주제어

Modeling; Continuous fermentative hydrogen production; Different kinetic rates; Selectivity; Metabolic pathways; Food waste; Biohydrogen

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1 2023-12-11

논문; 2018-02-01

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