Références bibliographiques
Batstone, D. J., Hülsen, T. et al. (2015). Platforms for energy and nutrient recovery from
domestic
wastewater:a
review.
Chemosphere.vol .140.
P.2–11.
https://doi.org/10.1016/j.chemosphere.2014.10.021.
Berramdani, R. (2019). Contribution à la production des microalgues isolées à partir du barrage
Manbaa Elghizlene-Biskra
Besson, A., Guiraud, P. (2013). High-pH-induced flocculation-flotation of the hypersaline
microalga Dunaliella salina.
Bhatnagar, A., Chinnasamy, S., et al. (2011). Renewable biomass production by mixotrophic
algae in the presence of various carbon sources and wastewaters. Applied Energy.vol.88(10). P.
3425–3431. https://doi.org/10.1016/j.apenergy.2010.12.064
Bhola, V., Ramesh, D.et. al. (2011). Effects of parameters affecting biomass yield and thermal
behaviour of Chlorella vulgaris. Journal of Bioscience and Bioengineering.vol.111(3). P. 377–
382. https://doi.org/10.1016/j.jbiosc.2010.11.006
Boileau, M. (2015). Évaluation Du Potentiel D’utilisation D’une Eau Usée Industrielle Comme
Substrat de Culture Pour Des Microalgues D’eau Douce Dans Une Optique de Production de
Biocarburants de 3e Génération.
Boulefa W., Bouldjedri M. E. (2020). Dynamique et structure du phytoplancton des milieux
lentiques et lotiques. Thèse. Université de Jijel.
Brown, M. R. (1997). Nutritional properties of microalgae for mariculture.
Buhmann, A. K., Papenbrock, J. (2013). Biofiltering of aquaculture effluents by halophytic
plants: Basic principles, current uses and future perspectives. Environmental and Experimental
Botany.vol.92, P.122–133. https://doi.org/10.1016/j.envexpbot.2012.07.005
Cabello, F. C. (2006). Heavy use of prophylactic antibiotics in aquaculture: a growing problem
for human and animal health and for the environment. Environmental Microbiology, 8(7),
P.1137–1144. https://doi.org/10.1111/j.1462-2920.2006.01054.x
Cadoret, J., & Bernard, O. (2008). La production de biocarburant lipidique avec des
microalgues : promesses et défis. Journal De La Société De Biologie.vol.202(3), P .201–211.
https://doi.org/10.1051/jbio:2008022
Camargo, J. A., Alonso, Á et al. (2005). Nitrate toxicity to aquatic animals: a review with new
data
for
freshwater
invertebrates.
Chemosphere.vol.58(9),
P1255–1267.
https://doi.org/10.1016/j.chemosphere.2004.10.044
Cao, J., Wang, C., et al. (2016). Removal of heavy metal Cu (II) in simulated aquaculture
wastewater by modified palygorskite. Environmental Pollution.vol. 219, P. 924–931.
https://doi.org/10.1016/j.envpol.2016.09.014
Carlsson, A.S., van Beilen, J.B., et al. (2007). Micro-and macro-algae: utility for industrial
applications. In: Bowles D, editor. Outputs from the EPOBIO project. UK: CPL Press. p. 82
Batstone, D. J., Hülsen, T. et al. (2015). Platforms for energy and nutrient recovery from
domestic
wastewater:a
review.
Chemosphere.vol .140.
P.2–11.
https://doi.org/10.1016/j.chemosphere.2014.10.021.
Berramdani, R. (2019). Contribution à la production des microalgues isolées à partir du barrage
Manbaa Elghizlene-Biskra
Besson, A., Guiraud, P. (2013). High-pH-induced flocculation-flotation of the hypersaline
microalga Dunaliella salina.
Bhatnagar, A., Chinnasamy, S., et al. (2011). Renewable biomass production by mixotrophic
algae in the presence of various carbon sources and wastewaters. Applied Energy.vol.88(10). P.
3425–3431. https://doi.org/10.1016/j.apenergy.2010.12.064
Bhola, V., Ramesh, D.et. al. (2011). Effects of parameters affecting biomass yield and thermal
behaviour of Chlorella vulgaris. Journal of Bioscience and Bioengineering.vol.111(3). P. 377–
382. https://doi.org/10.1016/j.jbiosc.2010.11.006
Boileau, M. (2015). Évaluation Du Potentiel D’utilisation D’une Eau Usée Industrielle Comme
Substrat de Culture Pour Des Microalgues D’eau Douce Dans Une Optique de Production de
Biocarburants de 3e Génération.
Boulefa W., Bouldjedri M. E. (2020). Dynamique et structure du phytoplancton des milieux
lentiques et lotiques. Thèse. Université de Jijel.
Brown, M. R. (1997). Nutritional properties of microalgae for mariculture.
Buhmann, A. K., Papenbrock, J. (2013). Biofiltering of aquaculture effluents by halophytic
plants: Basic principles, current uses and future perspectives. Environmental and Experimental
Botany.vol.92, P.122–133. https://doi.org/10.1016/j.envexpbot.2012.07.005
Cabello, F. C. (2006). Heavy use of prophylactic antibiotics in aquaculture: a growing problem
for human and animal health and for the environment. Environmental Microbiology, 8(7),
P.1137–1144. https://doi.org/10.1111/j.1462-2920.2006.01054.x
Cadoret, J., & Bernard, O. (2008). La production de biocarburant lipidique avec des
microalgues : promesses et défis. Journal De La Société De Biologie.vol.202(3), P .201–211.
https://doi.org/10.1051/jbio:2008022
Camargo, J. A., Alonso, Á et al. (2005). Nitrate toxicity to aquatic animals: a review with new
data
for
freshwater
invertebrates.
Chemosphere.vol.58(9),
P1255–1267.
https://doi.org/10.1016/j.chemosphere.2004.10.044
Cao, J., Wang, C., et al. (2016). Removal of heavy metal Cu (II) in simulated aquaculture
wastewater by modified palygorskite. Environmental Pollution.vol. 219, P. 924–931.
https://doi.org/10.1016/j.envpol.2016.09.014
Carlsson, A.S., van Beilen, J.B., et al. (2007). Micro-and macro-algae: utility for industrial
applications. In: Bowles D, editor. Outputs from the EPOBIO project. UK: CPL Press. p. 82
