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A. V. Markovets

Researcher at Saint-Petersburg State University of Technology and Design

Publications -  7
Citations -  54

A. V. Markovets is an academic researcher from Saint-Petersburg State University of Technology and Design. The author has contributed to research in topics: Biohydrogen & Bioreactor. The author has an hindex of 5, co-authored 7 publications receiving 54 citations. Previous affiliations of A. V. Markovets include Athabasca University.

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Three-dimensional modeling of photo fermentative biohydrogen generation in a microbioreactor

TL;DR: In this paper, a comprehensive three-dimensional numerical platform of photo fermentation was developed, based on lattice Boltzmann method coupled with cellular automata, to study and enhance the photo fermentative production of biohydrogen.
Journal ArticleDOI

Three-dimensional modeling of photo fermentative biohydrogen generation in a microbioreactor

TL;DR: In this article , a comprehensive three-dimensional numerical platform of photo fermentation was developed, based on lattice Boltzmann method coupled with cellular automata, to study and enhance the photo fermentative production of biohydrogen.
Journal ArticleDOI

Modelling soil salinity effects on salt water uptake and crop growth using a modified denitrification-decomposition model: A phytoremediation approach.

TL;DR: In this paper, the authors proposed a PDM for salt-affected soil within the process-based biogeochemical denitrification-decomposition (DNDC) model.
Journal ArticleDOI

Modelling soil salinity effects on salt water uptake and crop growth using a modified denitrification-decomposition model: A phytoremediation approach

TL;DR: In this article , the authors proposed a PDM for salt-affected soil within the process-based biogeochemical denitrification-decomposition (DNDC) model.
Journal ArticleDOI

Modeling microbial growth of dynamic membrane in a biohydrogen production bioreactor

TL;DR: In this article , the authors developed a sophisticated model of biofilm growth, dynamic membrane formation, and dark fermentative hydrogen production within a platform of coupled lattice Boltzmann and cellular automata, which was validated against the experimental data available and then was applied for the investigation of biohydrogen production in bioreactors under different membrane structures and inlet velocities.