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Kinetic characterization and modeling of a microalgae consortium isolated from landfill leachate under a high CO2 concentration in a bubble column photobioreactor
Author(s) -
Luis Fernando Saldarriaga,
Fernando Almenglo,
Martín Ramírez,
Domingo Cantero
Publication year - 2020
Publication title -
electronic journal of biotechnology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.603
H-Index - 57
ISSN - 0717-3458
DOI - 10.1016/j.ejbt.2020.01.006
Subject(s) - photobioreactor , leachate , ammonium , nitrate , kinetic energy , ammonium nitrate , microbial consortium , bubble , mass transfer , environmental science , chemistry , environmental engineering , materials science , environmental chemistry , chromatography , mechanics , biomass (ecology) , ecology , biology , physics , microorganism , genetics , organic chemistry , quantum mechanics , bacteria
Background The determination of kinetic parameters and the development of mathematical models are of great interest to predict the growth of microalgae, the consumption of substrate and the design of photobioreactors focused on CO2 capture. However, most of the models in the literature have been developed for CO2 concentrations below 10%. Results A nonaxenic microalgal consortium was isolated from landfill leachate in order to study its kinetic behavior using a dynamic model. The model considered the CO2 mass transfer from the gas phase to the liquid phase and the effect of light intensity, assimilated nitrogen concentration, ammonium concentration and nitrate concentration. The proposed mathematical model was adjusted with 13 kinetic parameters and validated with a good fit obtained between experimental and simulated data. Conclusions Good results were obtained, demonstrating the robustness of the proposed model. The assumption in the model of DIC inhibition in the ammonium and nitrate uptakes was correct, so this aspect should be considered when evaluating the kinetics with microalgae with high inlet CO2 concentrations.

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