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further potential biomass valorisation.
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aquaculture wastewater by adsorption onto pyrolysed paper mill sludge. Chemosphere.vol.168,
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biomass production and wastewater reclamation in Northern Sweden. Algal Research-Biomass
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valorisationbiologique de CO2. http://www.theses.fr/2012SUPL0007.pdf
Franco-Nava, M., Blancheton, J, et al. (2004). Effect of fish size and hydraulic regime on
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nitrogen
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microalgae.
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Gatamaneni, B., Loganathan, V, et al. (2020). Utilizing the microalgal biomass of Chlorella
variabilis and Scenedesmus obliquus produced from the treatment of synthetic dairy wastewater
as a biofertilizer.
Gaujous, D. (1995). La pollution des milieux aquatiques : aide-mémoire.
Ghaly, A. E., Kamal, M. L, et al. (2005). Phytoremediation of aquaculture wastewater for
water recycling and production of fish feed. Environment International.vol.31(1), P . 1–13.
https://doi.org/10.1016/j.envint.2004.05.011
Daneshvar, E., Ok, Y.et al. (2021). Insights into upstream processing of microalgae: A review.
Bioresource Technology.vol.329, P. 124870. https://doi.org/10.1016/j.biortech.2021.124870
El-Sayed, A.-F.M. (2020). Tilapia Culture, second edition. Academic Press.Cambridge.
Esteves, F. (2023). Microalgae systems - environmental agents for wastewater treatment and
further potential biomass valorisation.
Falkowski, P. G., Raven, J. A. (2007). Aquatic photosynthesis: Second Edition. Princeton
University Press.
FAO .2022. La Situation mondiale des pêches et de l’aquaculture 2022
Feki, S. (2013). Analyse de la variabilité spatio-temporelle des populations phytoplanctoniques
observées dans le réseau national de surveillance du phytoplancton dans le golfe de Gabés.
Thèse.
Ferreira, C. I., Calisto, V, et al (2017). Removal of tricaine methanesulfonate from
aquaculture wastewater by adsorption onto pyrolysed paper mill sludge. Chemosphere.vol.168,
p.139–146. https://doi.org/10.1016/j.chemosphere.2016.10.045
Ferro, L., Gentili, F.et al. (2018). Isolation and characterization of microalgal strains for
biomass production and wastewater reclamation in Northern Sweden. Algal Research-Biomass
Biofuels and Bioproducts.vol.32, P. 44–53. https://doi.org/10.1016/j.algal.2018.03.006
Filali, R. (2012). Estimation et commande robustes de culture de microalgues pour la
valorisationbiologique de CO2. http://www.theses.fr/2012SUPL0007.pdf
Franco-Nava, M., Blancheton, J, et al. (2004). Effect of fish size and hydraulic regime on
particulate organic matter dynamics in a recirculating aquaculture system: elemental carbon and
nitrogen
approach.
Aquaculture.vol.239(1–4),
P.
179–198.
https://doi.org/10.1016/j.aquaculture.2004.05.040
Gaignard, C., Gargouch, N.,et al . (2019). New horizons in culture and valorization of red
microalgae.
Biotechnology
Advances.vol.37(1),
P.193–222.
https://doi.org/10.1016/j.biotechadv.2018.11.014
Gatamaneni, B., Loganathan, V, et al. (2020). Utilizing the microalgal biomass of Chlorella
variabilis and Scenedesmus obliquus produced from the treatment of synthetic dairy wastewater
as a biofertilizer.
Gaujous, D. (1995). La pollution des milieux aquatiques : aide-mémoire.
Ghaly, A. E., Kamal, M. L, et al. (2005). Phytoremediation of aquaculture wastewater for
water recycling and production of fish feed. Environment International.vol.31(1), P . 1–13.
https://doi.org/10.1016/j.envint.2004.05.011
