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sequestration and industrial biorefineries. In Biomass. InTech.
Jacquemin, L., Pontalier, P. Y., & Sablayrolles, C. (2012). Life cycle assessment (LCA) applied to
the process industry: A review. The International Journal of Life Cycle Assessment, 17, 1–14.
Jian, H., Jing, Y., & Peidong, Z. (2015). Life cycle analysis on fossil energy ratio of algal
biodiesel: Effects of nitrogen deficiency and oil extraction technology. The Scientific World
Journal, 2015, 9.
Jolliet, O., Margni, M., Charles, R., Humbert, S., Payet, J., Rebitzer, G., et al. (2003). IMPACT
2002+: A new life cycle impact assessment methodology. The International Journal of Life
Cycle Assessment, 8(6), 324–330.
Jorquera, O., Kiperstok, A., Sales, E. A., Embirucu, M., & Ghirardi, M. L. (2010). Comparative
energy life-cycle analyses of microalgal biomass production in open ponds and photobioreactors. Bioresource Technology, 101(4), 1406–1413.
Klein, B. C., Bonomi, A., & Maciel Filho, R. (2017). Integration of microalgae production with
industrial biofuel facilities: A critical review. Renewable and Sustainable Energy Reviews, 82,
1376–1392.
Klöpffer, W. (2006). The role of SETAC in the development of LCA. The International Journal of
Life Cycle Assessment, 11, 116–122.
Laamanen, C. A., Ross, G. M., & Scott, J. A. (2016). Flotation harvesting of microalgae.
Renewable and Sustainable Energy Reviews, 58, 75–86.
Laratte, B., Guillaume, B., Kim, J., & Birregah, B. (2014). Modeling cumulative effects in life
cycle assessment: The case of fertilizer in wheat production contributing to the global warming
potential. Science of the Total Environment, 481, 588–595.
Liu, X., Clarens, A. F., & Colosi, L. M. (2012). Algae biodiesel has potential despite inconclusive
results to date. Bioresource Technology, 104, 803–806.
Luo, D., Hu, Z., Choi, D. G., Thomas, V. M., Realff, M. J., & Chance, R. R. (2010). Life cycle
energy and greenhouse gas emissions for an ethanol production process based on blue-green
algae. Environmental Science and Technology, 44(22), 8670–8677.
Medeiros, D. L., Sales, E. A., & Kiperstok, A. (2015). Energy production from microalgae
biomass: Carbon footprint and energy balance. Journal of Cleaner Production, 96, 493–500.
Mekonnen, M. M., & Hoekstra, A. Y. (2010). A global and high-resolution assessment of the
green, blue and grey water footprint of wheat (Vol. 42, pp. 1–94). Delft, The Netherlands:
Unesco-IHE Institute for Water Education.
Monari, C., Righi, S., & Olsen, S. I. (2016). Greenhouse gas emissions and energy balance of
biodiesel production from microalgae cultivated in photobioreactors in Denmark: A life-cycle
modeling. Journal of Cleaner Production, 112, 4084–4092.
Prox, M., & Curran, M. A. (2017). Consequential life cycle assessment. In Goal and scope
definition in life cycle assessment (pp. 145–160). Springer Netherlands.
Quiroz-Arita, C., Sheehan, J. J., & Bradley, T. H. (2017). Life cycle net energy and greenhouse
gas emissions of photosynthetic cyanobacterial biorefineries: Challenges for industrial
production of biofuels. Algal Research (in press).
Silva, J. A. M., Santos, J. J. C. S., Carvalho, M., & de Oliveira, S. (2017). On the thermoeconomic
and LCA methods for waste and fuel allocation in multiproduct systems. Energy, 127,
775–785.
Soccol, C. R., Faraco, V., Karp, S., Vandenberghe, L. P. S., Thomaz-Soccol, V., Woiciechowski,
A., et al. (2011). Biofuels: Alternative feedstocks and conversion processes.
Soh, L., Montazeri, M., Haznedaroglu, B. Z., Kelly, C., Peccia, J., Eckelman, M. J., et al. (2014).
Evaluating microalgal integrated biorefinery schemes: Empirical controlled growth studies and
life cycle assessment. Bioresource Technology, 151, 19–27.
Yvon-Durocher, G., Allen, A. P., Bastviken, D., Conrad, R., Gudasz, C., St-Pierre, A., et al.
(2014). Methane fluxes show consistent temperature dependence across microbial to ecosystem
scales. Nature, 507(7493), 488.
154
M. C. Deprá et al.
Life cycle interpretation. Geneva: International Organisation for Standardisation (ISO).
Jacob-Lopes, E., & Franco, T. T. (2010). Microalgae-based systems for carbon dioxide
sequestration and industrial biorefineries. In Biomass. InTech.
Jacquemin, L., Pontalier, P. Y., & Sablayrolles, C. (2012). Life cycle assessment (LCA) applied to
the process industry: A review. The International Journal of Life Cycle Assessment, 17, 1–14.
Jian, H., Jing, Y., & Peidong, Z. (2015). Life cycle analysis on fossil energy ratio of algal
biodiesel: Effects of nitrogen deficiency and oil extraction technology. The Scientific World
Journal, 2015, 9.
Jolliet, O., Margni, M., Charles, R., Humbert, S., Payet, J., Rebitzer, G., et al. (2003). IMPACT
2002+: A new life cycle impact assessment methodology. The International Journal of Life
Cycle Assessment, 8(6), 324–330.
Jorquera, O., Kiperstok, A., Sales, E. A., Embirucu, M., & Ghirardi, M. L. (2010). Comparative
energy life-cycle analyses of microalgal biomass production in open ponds and photobioreactors. Bioresource Technology, 101(4), 1406–1413.
Klein, B. C., Bonomi, A., & Maciel Filho, R. (2017). Integration of microalgae production with
industrial biofuel facilities: A critical review. Renewable and Sustainable Energy Reviews, 82,
1376–1392.
Klöpffer, W. (2006). The role of SETAC in the development of LCA. The International Journal of
Life Cycle Assessment, 11, 116–122.
Laamanen, C. A., Ross, G. M., & Scott, J. A. (2016). Flotation harvesting of microalgae.
Renewable and Sustainable Energy Reviews, 58, 75–86.
Laratte, B., Guillaume, B., Kim, J., & Birregah, B. (2014). Modeling cumulative effects in life
cycle assessment: The case of fertilizer in wheat production contributing to the global warming
potential. Science of the Total Environment, 481, 588–595.
Liu, X., Clarens, A. F., & Colosi, L. M. (2012). Algae biodiesel has potential despite inconclusive
results to date. Bioresource Technology, 104, 803–806.
Luo, D., Hu, Z., Choi, D. G., Thomas, V. M., Realff, M. J., & Chance, R. R. (2010). Life cycle
energy and greenhouse gas emissions for an ethanol production process based on blue-green
algae. Environmental Science and Technology, 44(22), 8670–8677.
Medeiros, D. L., Sales, E. A., & Kiperstok, A. (2015). Energy production from microalgae
biomass: Carbon footprint and energy balance. Journal of Cleaner Production, 96, 493–500.
Mekonnen, M. M., & Hoekstra, A. Y. (2010). A global and high-resolution assessment of the
green, blue and grey water footprint of wheat (Vol. 42, pp. 1–94). Delft, The Netherlands:
Unesco-IHE Institute for Water Education.
Monari, C., Righi, S., & Olsen, S. I. (2016). Greenhouse gas emissions and energy balance of
biodiesel production from microalgae cultivated in photobioreactors in Denmark: A life-cycle
modeling. Journal of Cleaner Production, 112, 4084–4092.
Prox, M., & Curran, M. A. (2017). Consequential life cycle assessment. In Goal and scope
definition in life cycle assessment (pp. 145–160). Springer Netherlands.
Quiroz-Arita, C., Sheehan, J. J., & Bradley, T. H. (2017). Life cycle net energy and greenhouse
gas emissions of photosynthetic cyanobacterial biorefineries: Challenges for industrial
production of biofuels. Algal Research (in press).
Silva, J. A. M., Santos, J. J. C. S., Carvalho, M., & de Oliveira, S. (2017). On the thermoeconomic
and LCA methods for waste and fuel allocation in multiproduct systems. Energy, 127,
775–785.
Soccol, C. R., Faraco, V., Karp, S., Vandenberghe, L. P. S., Thomaz-Soccol, V., Woiciechowski,
A., et al. (2011). Biofuels: Alternative feedstocks and conversion processes.
Soh, L., Montazeri, M., Haznedaroglu, B. Z., Kelly, C., Peccia, J., Eckelman, M. J., et al. (2014).
Evaluating microalgal integrated biorefinery schemes: Empirical controlled growth studies and
life cycle assessment. Bioresource Technology, 151, 19–27.
Yvon-Durocher, G., Allen, A. P., Bastviken, D., Conrad, R., Gudasz, C., St-Pierre, A., et al.
(2014). Methane fluxes show consistent temperature dependence across microbial to ecosystem
scales. Nature, 507(7493), 488.
154
M. C. Deprá et al.