Model-Based Prediction of Perceived Light Flashing in Recirculated Inclined Wavy-Bottomed Photobioreactors

Microalgae biomass production rate in short light-path photobioreactors potentially can be improved by mixing-induced flashing light regimes. A cascade photobioreactor features a thin liquid layer flowing down a sloping, wavy-bottomed surface where liquid flow exhibits peculiar local recirculation h...

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Main Authors: Giuseppe Olivieri, Monica Moroni, Marcel Janssen, Luca Piersanti, Daniela Mezza, Marco Bravi
Format: Article
Language:English
Published: MDPI AG 2021-07-01
Series:Processes
Subjects:
Online Access:https://www.mdpi.com/2227-9717/9/7/1158
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spelling doaj-7a9278bbdb08405e9501e2cc0344461a2021-07-23T14:03:10ZengMDPI AGProcesses2227-97172021-07-0191158115810.3390/pr9071158Model-Based Prediction of Perceived Light Flashing in Recirculated Inclined Wavy-Bottomed PhotobioreactorsGiuseppe Olivieri0Monica Moroni1Marcel Janssen2Luca Piersanti3Daniela Mezza4Marco Bravi5Bioprocess Engineering Group, Wageningen University and Research, Droevendaalsesteeg 1, 6700AA Wageningen, The NetherlandsDepartment of Civil, Constructional and Environmental Engineering (DICEA), Sapienza University of Rome, Via Eudossiana 18, 00184 Rome, ItalyBioprocess Engineering Group, Wageningen University and Research, Droevendaalsesteeg 1, 6700AA Wageningen, The NetherlandsDepartment Chemical Engineering Materials Environment (DICMA), Sapienza Università di Roma, Via Eudossiana 18, 00184 Rome, ItalyDepartment Chemical Engineering Materials Environment (DICMA), Sapienza Università di Roma, Via Eudossiana 18, 00184 Rome, ItalyDepartment Chemical Engineering Materials Environment (DICMA), Sapienza Università di Roma, Via Eudossiana 18, 00184 Rome, ItalyMicroalgae biomass production rate in short light-path photobioreactors potentially can be improved by mixing-induced flashing light regimes. A cascade photobioreactor features a thin liquid layer flowing down a sloping, wavy-bottomed surface where liquid flow exhibits peculiar local recirculation hydrodynamics, potentially conducive to an ordered flashing light regime. This article presents a model-based analysis of the frequency distribution of perceived irradiance in said wavy-bottomed photobioreactor. The model combines a Lagrangian description of the motion of individual cells, in turn derived from the hydrodynamic parameters of the photobioreactor extracted from an experimentally validated Computational Fluid Dynamic model, with a simplified description of the irradiance field across the culture thickness, down to the spectral analysis of perceived irradiance. The main finding of the work is that the wavy bottomed photobioreactor provides a ‘robust’ spectral excitation to the circulating microalgae up to 3 Hz frequency, while in flat panels and bubble columns excitation decays evenly at a 24 db/octave rate. This analysis paves the way to improving the light flashing performance of the wavy-bottomed photobioreactor with respect to geometry (cavity size and installation inclination) and operation (flow rate).https://www.mdpi.com/2227-9717/9/7/1158photobioreactorscascade photobioreactorwavy-bottomed photobioreactorflat panelbubble columncomputational fluid dynamics
collection DOAJ
language English
format Article
sources DOAJ
author Giuseppe Olivieri
Monica Moroni
Marcel Janssen
Luca Piersanti
Daniela Mezza
Marco Bravi
spellingShingle Giuseppe Olivieri
Monica Moroni
Marcel Janssen
Luca Piersanti
Daniela Mezza
Marco Bravi
Model-Based Prediction of Perceived Light Flashing in Recirculated Inclined Wavy-Bottomed Photobioreactors
Processes
photobioreactors
cascade photobioreactor
wavy-bottomed photobioreactor
flat panel
bubble column
computational fluid dynamics
author_facet Giuseppe Olivieri
Monica Moroni
Marcel Janssen
Luca Piersanti
Daniela Mezza
Marco Bravi
author_sort Giuseppe Olivieri
title Model-Based Prediction of Perceived Light Flashing in Recirculated Inclined Wavy-Bottomed Photobioreactors
title_short Model-Based Prediction of Perceived Light Flashing in Recirculated Inclined Wavy-Bottomed Photobioreactors
title_full Model-Based Prediction of Perceived Light Flashing in Recirculated Inclined Wavy-Bottomed Photobioreactors
title_fullStr Model-Based Prediction of Perceived Light Flashing in Recirculated Inclined Wavy-Bottomed Photobioreactors
title_full_unstemmed Model-Based Prediction of Perceived Light Flashing in Recirculated Inclined Wavy-Bottomed Photobioreactors
title_sort model-based prediction of perceived light flashing in recirculated inclined wavy-bottomed photobioreactors
publisher MDPI AG
series Processes
issn 2227-9717
publishDate 2021-07-01
description Microalgae biomass production rate in short light-path photobioreactors potentially can be improved by mixing-induced flashing light regimes. A cascade photobioreactor features a thin liquid layer flowing down a sloping, wavy-bottomed surface where liquid flow exhibits peculiar local recirculation hydrodynamics, potentially conducive to an ordered flashing light regime. This article presents a model-based analysis of the frequency distribution of perceived irradiance in said wavy-bottomed photobioreactor. The model combines a Lagrangian description of the motion of individual cells, in turn derived from the hydrodynamic parameters of the photobioreactor extracted from an experimentally validated Computational Fluid Dynamic model, with a simplified description of the irradiance field across the culture thickness, down to the spectral analysis of perceived irradiance. The main finding of the work is that the wavy bottomed photobioreactor provides a ‘robust’ spectral excitation to the circulating microalgae up to 3 Hz frequency, while in flat panels and bubble columns excitation decays evenly at a 24 db/octave rate. This analysis paves the way to improving the light flashing performance of the wavy-bottomed photobioreactor with respect to geometry (cavity size and installation inclination) and operation (flow rate).
topic photobioreactors
cascade photobioreactor
wavy-bottomed photobioreactor
flat panel
bubble column
computational fluid dynamics
url https://www.mdpi.com/2227-9717/9/7/1158
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