Références bibliographiques
Perez,P. Vaz-Blanco .E. Beiras R (2006). Effet of copper on the photochemical efficiency,
growth and chlorophyll a biomass of natural phytoplankton assemblage. Environmental
Toxicology and Chemistry.
Perez-Garcia, O., Bashan, Y. (2015). Microalgal heterotrophic and mixotrophic culturing for
bio-refining: from metabolic routes to techno-economics. In Springer eBooks, P61–131.
https://doi.org/10.1007/978-3-319-20200-6_3
Polat, E., Yüksel, E., et al. (2020). Mutual effect of sodium and magnesium on the cultivation
of microalgae Auxenochlorella protothecoides. Biomass & Bioenergy.vol.132.
https://doi.org/10.1016/j.biombioe.2019.105441
Ras, M., Steyer, J., et al. (2013). Temperature effect on microalgae: a crucial factor for outdoor
production. Reviews in Environmental Science and Bio/Technology.vol.12(2), P.153–164.
https://doi.org/10.1007/s11157-013-9310-6
Reno, U., Regaldo, Let al. (2020). Circular Economy and Agro-Industrial Wastewater:
Potential of microalgae in bioremediation processes. In Applied environmental science and
engineering for a sustainable future, P. 111–129. https://doi.org/10.1007/978-3-030-39137-9_5
Richmond, A. (2004). Handbook of microalgal culture: biotechnology and applied phycology.
In Blackwell Science eBooks (Issue 1). http://ci.nii.ac.jp/ncid/BA64945502
Rodier, C. (2008). Externalisation du contrôle des flux migratoires : comment et avec qui
l'Europe repousse ses frontières.
Rodier, J., Geoffray, C., et al. (1996). L'analyse de l’eau : eaux naturelles, eaux résiduaires,
eau de mer : chimie, physico-chimie, bactériologie, biologie.
Sadi, M. 2012. Les micro algues : un défi prometteur pour des biocarburants propres. Revue
Des Energies Renouvelables SIENR’12 Ghardaïa, p. 195-202.
Salag, B (2021). Culture de microalgue verte sur les effluents liquides laitiers pour la
production de biodiésel.
Saliu, T. D., Oladoja, N. A. (2021). Nutrient recovery from wastewater and reuse in
agriculture: a review. Environmental Chemistry Letters.vol.19, P. 2299–2316.
https://doi.org/10.1007/s10311-020-01159-7.
Santos-Ballardo, D. U., Rossi, S., et al. (2015). A simple spectrophotometric method for
biomass measurement of important microalgae species in aquaculture. Aquaculture.vol,448,
p .87–92. https://doi.org/10.1016/j.aquaculture.2015.05.044
Sayegh FAQ, Radi, Montagne DJS (2007). Do strain microalgae alter their relative quality as
a food for the rotifier brachionis plicatilis. Aquaculture, 273.
Sforza, E., Barbera, E., et al. (2015). Improving the photoconversion efficiency: An integrated
photovoltaic-photobioreactor system for microalgal cultivation.
Sindilariu, P., Schulz, C., et al. (2007). Treatment of flow-through trout aquaculture effluents
in
a
constructed
wetland.
Aquaculture.vol.270(1–4),
P.92–104.
https://doi.org/10.1016/j.aquaculture.2007.03.006
Perez,P. Vaz-Blanco .E. Beiras R (2006). Effet of copper on the photochemical efficiency,
growth and chlorophyll a biomass of natural phytoplankton assemblage. Environmental
Toxicology and Chemistry.
Perez-Garcia, O., Bashan, Y. (2015). Microalgal heterotrophic and mixotrophic culturing for
bio-refining: from metabolic routes to techno-economics. In Springer eBooks, P61–131.
https://doi.org/10.1007/978-3-319-20200-6_3
Polat, E., Yüksel, E., et al. (2020). Mutual effect of sodium and magnesium on the cultivation
of microalgae Auxenochlorella protothecoides. Biomass & Bioenergy.vol.132.
https://doi.org/10.1016/j.biombioe.2019.105441
Ras, M., Steyer, J., et al. (2013). Temperature effect on microalgae: a crucial factor for outdoor
production. Reviews in Environmental Science and Bio/Technology.vol.12(2), P.153–164.
https://doi.org/10.1007/s11157-013-9310-6
Reno, U., Regaldo, Let al. (2020). Circular Economy and Agro-Industrial Wastewater:
Potential of microalgae in bioremediation processes. In Applied environmental science and
engineering for a sustainable future, P. 111–129. https://doi.org/10.1007/978-3-030-39137-9_5
Richmond, A. (2004). Handbook of microalgal culture: biotechnology and applied phycology.
In Blackwell Science eBooks (Issue 1). http://ci.nii.ac.jp/ncid/BA64945502
Rodier, C. (2008). Externalisation du contrôle des flux migratoires : comment et avec qui
l'Europe repousse ses frontières.
Rodier, J., Geoffray, C., et al. (1996). L'analyse de l’eau : eaux naturelles, eaux résiduaires,
eau de mer : chimie, physico-chimie, bactériologie, biologie.
Sadi, M. 2012. Les micro algues : un défi prometteur pour des biocarburants propres. Revue
Des Energies Renouvelables SIENR’12 Ghardaïa, p. 195-202.
Salag, B (2021). Culture de microalgue verte sur les effluents liquides laitiers pour la
production de biodiésel.
Saliu, T. D., Oladoja, N. A. (2021). Nutrient recovery from wastewater and reuse in
agriculture: a review. Environmental Chemistry Letters.vol.19, P. 2299–2316.
https://doi.org/10.1007/s10311-020-01159-7.
Santos-Ballardo, D. U., Rossi, S., et al. (2015). A simple spectrophotometric method for
biomass measurement of important microalgae species in aquaculture. Aquaculture.vol,448,
p .87–92. https://doi.org/10.1016/j.aquaculture.2015.05.044
Sayegh FAQ, Radi, Montagne DJS (2007). Do strain microalgae alter their relative quality as
a food for the rotifier brachionis plicatilis. Aquaculture, 273.
Sforza, E., Barbera, E., et al. (2015). Improving the photoconversion efficiency: An integrated
photovoltaic-photobioreactor system for microalgal cultivation.
Sindilariu, P., Schulz, C., et al. (2007). Treatment of flow-through trout aquaculture effluents
in
a
constructed
wetland.
Aquaculture.vol.270(1–4),
P.92–104.
https://doi.org/10.1016/j.aquaculture.2007.03.006
