Dasgupta, C. N., Jose Gilbert, J., Lindblad, P., Heidorn, T., Borgvang, S. A., Skjanes, K., et al.
(2010). Recent trends on the development of photobiological processes and photobioreactors
for the improvement of hydrogen production. International Journal of Hydrogen Energy, 35,
10218–10238.
De La Noue, J., & De Pauw, N. (1988). The potential of microalgal biotechnology: A review of
production and uses of microalgae. Biotechnology Advances, 6, 725–770.
De La Noüe, J., Laliberté, G., & Proulx, D. (1992). Algae and waste water. Journal of Applied
Phycology, 4, 247–254.
Drira, N., Piras, A., Rosa, A., Porcedda, S., & Dhaouadi, H. (2016). Microalgae from domestic
wastewater facility’s high rate algal pond: Lipids extraction, characterization and biodiesel
production. Bioresource Technology, 206, 239–244.
EPA Office of Water. (2006). Wastewater management fact sheet, energy conservation.
Feng, Y., Li, C., & Zhang, D. (2011). Lipid production of Chlorella vulgaris cultured in artificial
wastewater medium. Bioresource Technology, 102, 101–105.
Goiris, K., Van Colen, W., Wilches, I., León-Tamariz, F., De Cooman, L., & Muylaert, K. (2015).
Impact of nutrient stress on antioxidant production in three species of microalgae. Algal
Research, 7, 51–57.
Goncalves, A. L., Pires, J. C. M., & Simoes, M. (2016). The effects of light and temperature on
microalgal growth and nutrient removal: An experimental and mathematical approach. RSC
Advances, 6, 22896–22907.
Gonçalves, A. L., Pires, J. C. M., & Simões, M. (2017). A review on the use of microalgal
consortia for wastewater treatment. Algal Research, 24, Part B, 403–415.
Gouveia, L., & Empis, J. (2003). Relative stabilities of microalgal carotenoids in microalgal
extracts, biomass and fish feed: Effect of storage conditions. Innovative Food Science &
Emerging Technologies, 4, 227–233.
Guštin, S., & Marinšek-Logar, R. (2011). Effect of pH, temperature and air flow rate on the
continuous ammonia stripping of the anaerobic digestion effluent. Process Safety and
Environmental Protection, 89, 61–66.
Han, S. F., Jin, W. B., Tu, R. J., Abomohra, A., & Wang, Z. H. (2016). Optimization of aeration
for biodiesel production by Scenedesmus obliquus grown in municipal wastewater. Bioprocess
and Biosystems Engineering, 39, 1073–1079.
Harun, R., Singh, M., Forde, G. M., & Danquah, M. K. (2010). Bioprocess engineering of
microalgae to produce a variety of consumer products. Renewable and Sustainable Energy
Reviews, 14, 1037–1047.
Hernandez, D., Riano, B., Coca, M., Solana, M., Bertucco, A., & Garcia-Gonzalez, M. C. (2016).
Microalgae cultivation in high rate algal ponds using slaughterhouse wastewater for biofuel
applications. Chemical Engineering Journal, 285, 449–458.
Hoffmann, J. P. (1998). Wastewater treatment with suspended and nonsuspended algae. Journal of
Phycology, 34, 757–763.
Jia, H., Yuan, Q., & Rein, A. (2016). Removal of nitrogen from wastewater using microalgae and
microalgae—Bacteria consortia. Cogent Environmental Science, 2, 1275089.
Kochen, L. H. (2010). Caracterização de fotobioreator air-lift para cultivo de microalgas.
Universidade Federal do Rio Grande do Sul.
Kong, Q. X., Li, L., Martinez, B., Chen, P., & Ruan, R. (2010). Culture of microalgae
chlamydomonas reinhardtii in wastewater for biomass feedstock production. Applied
Biochemistry and Biotechnology, 160, 9–18.
Lam, M. K., Yusoff, M. I., Uemura, Y., Lim, J. W., Khoo, C. G., Lee, K. T., et al. (2017).
Cultivation of Chlorella vulgaris using nutrients source from domestic wastewater for biodiesel
production: Growth condition and kinetic studies. Renewable Energy, 103, 197–207.
Larsdotter, K. (2006). Wastewater treatment with microalgae—A literature review. Vatten, 62,
31–38.
Lau, P. S., Tam, N. F. Y., & Wong, Y. S. (1995). Effect of algal density on nutrient removal from
primary settled wastewater. Environmental Pollution, 89, 59–66.
54
A. P. de Carvalho Lopes et al.
(2010). Recent trends on the development of photobiological processes and photobioreactors
for the improvement of hydrogen production. International Journal of Hydrogen Energy, 35,
10218–10238.
De La Noue, J., & De Pauw, N. (1988). The potential of microalgal biotechnology: A review of
production and uses of microalgae. Biotechnology Advances, 6, 725–770.
De La Noüe, J., Laliberté, G., & Proulx, D. (1992). Algae and waste water. Journal of Applied
Phycology, 4, 247–254.
Drira, N., Piras, A., Rosa, A., Porcedda, S., & Dhaouadi, H. (2016). Microalgae from domestic
wastewater facility’s high rate algal pond: Lipids extraction, characterization and biodiesel
production. Bioresource Technology, 206, 239–244.
EPA Office of Water. (2006). Wastewater management fact sheet, energy conservation.
Feng, Y., Li, C., & Zhang, D. (2011). Lipid production of Chlorella vulgaris cultured in artificial
wastewater medium. Bioresource Technology, 102, 101–105.
Goiris, K., Van Colen, W., Wilches, I., León-Tamariz, F., De Cooman, L., & Muylaert, K. (2015).
Impact of nutrient stress on antioxidant production in three species of microalgae. Algal
Research, 7, 51–57.
Goncalves, A. L., Pires, J. C. M., & Simoes, M. (2016). The effects of light and temperature on
microalgal growth and nutrient removal: An experimental and mathematical approach. RSC
Advances, 6, 22896–22907.
Gonçalves, A. L., Pires, J. C. M., & Simões, M. (2017). A review on the use of microalgal
consortia for wastewater treatment. Algal Research, 24, Part B, 403–415.
Gouveia, L., & Empis, J. (2003). Relative stabilities of microalgal carotenoids in microalgal
extracts, biomass and fish feed: Effect of storage conditions. Innovative Food Science &
Emerging Technologies, 4, 227–233.
Guštin, S., & Marinšek-Logar, R. (2011). Effect of pH, temperature and air flow rate on the
continuous ammonia stripping of the anaerobic digestion effluent. Process Safety and
Environmental Protection, 89, 61–66.
Han, S. F., Jin, W. B., Tu, R. J., Abomohra, A., & Wang, Z. H. (2016). Optimization of aeration
for biodiesel production by Scenedesmus obliquus grown in municipal wastewater. Bioprocess
and Biosystems Engineering, 39, 1073–1079.
Harun, R., Singh, M., Forde, G. M., & Danquah, M. K. (2010). Bioprocess engineering of
microalgae to produce a variety of consumer products. Renewable and Sustainable Energy
Reviews, 14, 1037–1047.
Hernandez, D., Riano, B., Coca, M., Solana, M., Bertucco, A., & Garcia-Gonzalez, M. C. (2016).
Microalgae cultivation in high rate algal ponds using slaughterhouse wastewater for biofuel
applications. Chemical Engineering Journal, 285, 449–458.
Hoffmann, J. P. (1998). Wastewater treatment with suspended and nonsuspended algae. Journal of
Phycology, 34, 757–763.
Jia, H., Yuan, Q., & Rein, A. (2016). Removal of nitrogen from wastewater using microalgae and
microalgae—Bacteria consortia. Cogent Environmental Science, 2, 1275089.
Kochen, L. H. (2010). Caracterização de fotobioreator air-lift para cultivo de microalgas.
Universidade Federal do Rio Grande do Sul.
Kong, Q. X., Li, L., Martinez, B., Chen, P., & Ruan, R. (2010). Culture of microalgae
chlamydomonas reinhardtii in wastewater for biomass feedstock production. Applied
Biochemistry and Biotechnology, 160, 9–18.
Lam, M. K., Yusoff, M. I., Uemura, Y., Lim, J. W., Khoo, C. G., Lee, K. T., et al. (2017).
Cultivation of Chlorella vulgaris using nutrients source from domestic wastewater for biodiesel
production: Growth condition and kinetic studies. Renewable Energy, 103, 197–207.
Larsdotter, K. (2006). Wastewater treatment with microalgae—A literature review. Vatten, 62,
31–38.
Lau, P. S., Tam, N. F. Y., & Wong, Y. S. (1995). Effect of algal density on nutrient removal from
primary settled wastewater. Environmental Pollution, 89, 59–66.
54
A. P. de Carvalho Lopes et al.