Bioresource Technology, 104, 127–135. https://doi.org/10.1016/j.
biortech.2011.10.068.
Bansal, R. (2017). Handbook of distributed generation: electric power
technologies. Springer, Pretoria: Economics and Environmental
Impacts.
Barcelos, B. R. (2009). Evaluation of the departure of anaerobic
digestion of the Organic Fraction of Domestic Solid Waste
inoculated with different agricultural residues. Dissertation, University of Brasília.
Bozym, M., Florczak, I., et al. (2015). An analysis of metal
concentrations in food wastes for biogas production. Renewable
Energy, 77, 467–472. https://doi.org/10.1016/j.renene.2014.11.010.
BRAZIL. Law 12,305, of August 2, 2010. Institutes the National Solid
Waste Policy; amends Law No. 9,605, of February 12, 1998; and
makes other arrangements.
Callado, N. H., Daminovic, M. H. Z., & Foresti, E. (2017). Influence of
the COD/[SO 4 2-] ratio and the Na + concentration on the removal of
organic matter and sulfate in the UASB reactor. Eng. Sanit. Ambient.,
22, 381–390. https://doi.org/10.1590/s1413-41522016140811.
Castro, D. S., & Mateus, V.O. (2016). Biogas production from food
scraps collected in a restaurant: an experience to be disseminated.
Paper presents at the XV Student Seminar on Academic Production,
Salvador University, 18 november 2016.
Chavarria, A. M., Rodríguez, W., & Saborío-Viquez, C. (2018).
Continuous Anaerobic Biodigestion of the liquid substrate extrated
from pineapple stubble in biodigesters of 0.1 and 4.6L. Scientific
Papers Series Management, Economic Engineering in Agriculture
and Rural Development, 18, 261–268.
Chen, L., Xu, Y., et al. (2016). Gastric emptying and morphology of a
‘near real’ in vitro human stomach model (RD-IV-HSM). Journal of
Food Engineering, 183, 1–8.
De La Rubia, M. A., Perez, M., & Garcia, L. I. R. (2002). Anaerobic
mesophilic and thermophilic municipal sludge digestion. Chemical
and Biochemical Engineering, 16, 119–124.
Deublein, D., & Steinhauser, A. (2008). Biogas from Waste and Renewable
Resources. An Introduction, first ed. Wiley-VCH, Germany.
DIN 38414 Part 8. (1985). Sludge and sediments (group S): Determination
of
the
amenability
to
anaerobic
digestion.
DeutschesInstitutfürNormung.
Drosg, B. (2013). Process monitoring in biogas plants. United
Kingdom: IEA Bioenergy.
Durruty, I., & Gonzalez, J. F. (2015). Effect of alternative nutrient
sources during anaerobic, degradation of potato wastewater.
Science, Technology and Development, 34, 94–100.
El-Gohary, F. A., Nasr, F. A., & Aly, O. A. (1986). The toxicity effect
of pesticides and herbicides on the anaerobic digestion process.
Biogas Technology, Transfer and Diffusion. Springer, Dordrecht.
Enerdata. (2019). Global Energy Statistical Yearbook. Enerdata
Intelligence & Consulting. https://yearbook.enerdata.net/. Acessedmay 2020.
Estoppey, N. (2010). Evaluation of small-scale biogas systems for the
treatment of faeces and kitchen waste. Swiss Federal Institute of
Aquatic Science and Technology (Eawag), Dübendorf, Switzerland.
Fachagentur Nachwachsende Rohstoffe EV. (2010). Practical guide for
biogas: generation and use. Gülzow.
FAO. (2019). The State of food and agriculture 2019. Moving forward
on food loss and waste reduction. Rome.
Ferguson, R. M. W., Coulon, F., & Villa, R. (2016). Organic loading
rate: a promising tool for microbial management in anaerobic
digestion. Water Research, 100, 348–356.
Furst, M., et al. (2019). Biowaste to biogas. Germany: Federal Ministry
for Economic Cooperation and Development.
Gebreeyessus, G. D., & Jenicek, P. (2016). Thermophilic versus
Mesophilic Anaerobic Digestion of Sewage Sludge: A Comparative
Review. Bioengineering (Basel), 3, 1–14. https://doi.org/10.3390/
bioengineering3020015.
Gioannis, G. D., Diaz, L. F., Muntoni, A., & Pisanu, A. (2008).
Two-phase anaerobic digestion within a solid waste/wastewater
integrated management system. Waste Management, 28, 1801–
1808.
Gueri, M. V. D. (2017). Evaluation of the process of anaerobic
digestion of food residues in batch and semi-continuous reactors.
Disseration: State University of Western Paraná.
Haak, L., Roy, R., & Pagilla, K. (2016). Toxicity and potential for
biogas production from refinery sludge for anaerobic digestion.
Chemosphere,
144,
1170–1176.
https://doi.org/10.1016/j.
chemosphere.2015.09.099.
Hernandez, M., & Rodríguez, M. (2013). Hydrogen production by
anaerobic digestion of pig manure: Effect of operating conditions.
Renewable Energy, 53, 187–192. https://doi.org/10.1016/j.renene.
2012.11.024.
Jank, A., Müller, W., et al. (2017). Hydrocyclones for the separation of
impurities in pretreated biowaste. Waste Management, 64, 12–19.
Kallistova, A. Y., Goel, G., & Nozhevnikova, A. N. (2014). Microbial
diversity of methanogenic communities in the systems for anaerobic
treatment of organic waste. Microbiology, 83, 462–483. https://doi.
org/10.1134/S0026261714050142.
Karim, K., Hoffmann, R., et al. (2005). Anaerobic digestion of animal
waste: Waste strength versus impact of mixing. Bioresource
Technology, Amsterdam, 96, 1771–1781.
Kaza, S., Yao, L. C., Bhada-Tata, P., & Van Woerden, F. (2018). What
a Waste 2.0: A Global Snapshot of Solid Waste Management to
2050. Urban Development;. Washington, DC: World Bank. ©
World Bank. https://openknowledge.worldbank.org/handle/10986/
30317 License: CC BY 3.0 IGO.
Kim, J. K., Oh, B. R., et al. (2006). Effects of temperature and hydraulic
retention time on anaerobic digestion of food waste. Journal of
Bioscience and Bioengineering, 102, 328–332.
Kougias, P. G., Boe, K., et al. (2015). Counteracting foaming caused by
lipids or proteins in biogas reactors using rapeseed oil or oleic acid
as antifoaming agents. Water Research, 79, 119–127. https://doi.
org/10.1016/j.watres.2015.04.034.
Kundu, K., Sharma, S., & Sreekrishnan, T. R. (2017). Influence of
Process parameters on anaerobic digestion microbiome in bioenergy
production: towards an improved understanding. BioEnergy
Research, 10, 288–303. https://doi.org/10.1007/s12155-016-97890.
Kunz, A., Steinmetz, R. L. R., & Amaral, A. C. (2019). Fundamentals
of anaerobic digestion, biogas purification, use and treatment of the
digestate. Concord: Embrapa Pigs and Poultry.
Kwietniewska, E., & Tys, J. (2014). Process characteristics, inhibition
factors and methane yields of anaerobic digestion process, with
particular focus on microalgal biomass fermentation. Renewable
and Sustainable Energy Reviews, 34, 491–500.
Lebuhn, M., Liu, F., et al. (2008). Biogas production from
mono-digestion of maize silage–long-term process stability and
requirements. Water Science and Technology, 58, 1645–1651.
https://doi.org/10.2166/wst.2008.495.
Leite, W. R. M. (2015). Anaerobic digestion at mesophilic and
thermophilic temperatures of ether sludge using single-stage and
two-stage reactors. Thesis: Federal University of Santa Catarina.
Leite, V. D., & Lopes, W. S. et al. (2009). Anaerobic treatment of
organic solid waste with high and low concentration of solids.
Brazilian Journal of Sanitary and Environmental Engineering, 13,
190.
Liao, Q., Chang, J., et al. (2018). Bioreactorsfor microbial biomass and
energy conversion. Singapore: Green Energy and Technology.
Springer.
Bioconversion of Food Waste to Biogas
107
biortech.2011.10.068.
Bansal, R. (2017). Handbook of distributed generation: electric power
technologies. Springer, Pretoria: Economics and Environmental
Impacts.
Barcelos, B. R. (2009). Evaluation of the departure of anaerobic
digestion of the Organic Fraction of Domestic Solid Waste
inoculated with different agricultural residues. Dissertation, University of Brasília.
Bozym, M., Florczak, I., et al. (2015). An analysis of metal
concentrations in food wastes for biogas production. Renewable
Energy, 77, 467–472. https://doi.org/10.1016/j.renene.2014.11.010.
BRAZIL. Law 12,305, of August 2, 2010. Institutes the National Solid
Waste Policy; amends Law No. 9,605, of February 12, 1998; and
makes other arrangements.
Callado, N. H., Daminovic, M. H. Z., & Foresti, E. (2017). Influence of
the COD/[SO 4 2-] ratio and the Na + concentration on the removal of
organic matter and sulfate in the UASB reactor. Eng. Sanit. Ambient.,
22, 381–390. https://doi.org/10.1590/s1413-41522016140811.
Castro, D. S., & Mateus, V.O. (2016). Biogas production from food
scraps collected in a restaurant: an experience to be disseminated.
Paper presents at the XV Student Seminar on Academic Production,
Salvador University, 18 november 2016.
Chavarria, A. M., Rodríguez, W., & Saborío-Viquez, C. (2018).
Continuous Anaerobic Biodigestion of the liquid substrate extrated
from pineapple stubble in biodigesters of 0.1 and 4.6L. Scientific
Papers Series Management, Economic Engineering in Agriculture
and Rural Development, 18, 261–268.
Chen, L., Xu, Y., et al. (2016). Gastric emptying and morphology of a
‘near real’ in vitro human stomach model (RD-IV-HSM). Journal of
Food Engineering, 183, 1–8.
De La Rubia, M. A., Perez, M., & Garcia, L. I. R. (2002). Anaerobic
mesophilic and thermophilic municipal sludge digestion. Chemical
and Biochemical Engineering, 16, 119–124.
Deublein, D., & Steinhauser, A. (2008). Biogas from Waste and Renewable
Resources. An Introduction, first ed. Wiley-VCH, Germany.
DIN 38414 Part 8. (1985). Sludge and sediments (group S): Determination
of
the
amenability
to
anaerobic
digestion.
DeutschesInstitutfürNormung.
Drosg, B. (2013). Process monitoring in biogas plants. United
Kingdom: IEA Bioenergy.
Durruty, I., & Gonzalez, J. F. (2015). Effect of alternative nutrient
sources during anaerobic, degradation of potato wastewater.
Science, Technology and Development, 34, 94–100.
El-Gohary, F. A., Nasr, F. A., & Aly, O. A. (1986). The toxicity effect
of pesticides and herbicides on the anaerobic digestion process.
Biogas Technology, Transfer and Diffusion. Springer, Dordrecht.
Enerdata. (2019). Global Energy Statistical Yearbook. Enerdata
Intelligence & Consulting. https://yearbook.enerdata.net/. Acessedmay 2020.
Estoppey, N. (2010). Evaluation of small-scale biogas systems for the
treatment of faeces and kitchen waste. Swiss Federal Institute of
Aquatic Science and Technology (Eawag), Dübendorf, Switzerland.
Fachagentur Nachwachsende Rohstoffe EV. (2010). Practical guide for
biogas: generation and use. Gülzow.
FAO. (2019). The State of food and agriculture 2019. Moving forward
on food loss and waste reduction. Rome.
Ferguson, R. M. W., Coulon, F., & Villa, R. (2016). Organic loading
rate: a promising tool for microbial management in anaerobic
digestion. Water Research, 100, 348–356.
Furst, M., et al. (2019). Biowaste to biogas. Germany: Federal Ministry
for Economic Cooperation and Development.
Gebreeyessus, G. D., & Jenicek, P. (2016). Thermophilic versus
Mesophilic Anaerobic Digestion of Sewage Sludge: A Comparative
Review. Bioengineering (Basel), 3, 1–14. https://doi.org/10.3390/
bioengineering3020015.
Gioannis, G. D., Diaz, L. F., Muntoni, A., & Pisanu, A. (2008).
Two-phase anaerobic digestion within a solid waste/wastewater
integrated management system. Waste Management, 28, 1801–
1808.
Gueri, M. V. D. (2017). Evaluation of the process of anaerobic
digestion of food residues in batch and semi-continuous reactors.
Disseration: State University of Western Paraná.
Haak, L., Roy, R., & Pagilla, K. (2016). Toxicity and potential for
biogas production from refinery sludge for anaerobic digestion.
Chemosphere,
144,
1170–1176.
https://doi.org/10.1016/j.
chemosphere.2015.09.099.
Hernandez, M., & Rodríguez, M. (2013). Hydrogen production by
anaerobic digestion of pig manure: Effect of operating conditions.
Renewable Energy, 53, 187–192. https://doi.org/10.1016/j.renene.
2012.11.024.
Jank, A., Müller, W., et al. (2017). Hydrocyclones for the separation of
impurities in pretreated biowaste. Waste Management, 64, 12–19.
Kallistova, A. Y., Goel, G., & Nozhevnikova, A. N. (2014). Microbial
diversity of methanogenic communities in the systems for anaerobic
treatment of organic waste. Microbiology, 83, 462–483. https://doi.
org/10.1134/S0026261714050142.
Karim, K., Hoffmann, R., et al. (2005). Anaerobic digestion of animal
waste: Waste strength versus impact of mixing. Bioresource
Technology, Amsterdam, 96, 1771–1781.
Kaza, S., Yao, L. C., Bhada-Tata, P., & Van Woerden, F. (2018). What
a Waste 2.0: A Global Snapshot of Solid Waste Management to
2050. Urban Development;. Washington, DC: World Bank. ©
World Bank. https://openknowledge.worldbank.org/handle/10986/
30317 License: CC BY 3.0 IGO.
Kim, J. K., Oh, B. R., et al. (2006). Effects of temperature and hydraulic
retention time on anaerobic digestion of food waste. Journal of
Bioscience and Bioengineering, 102, 328–332.
Kougias, P. G., Boe, K., et al. (2015). Counteracting foaming caused by
lipids or proteins in biogas reactors using rapeseed oil or oleic acid
as antifoaming agents. Water Research, 79, 119–127. https://doi.
org/10.1016/j.watres.2015.04.034.
Kundu, K., Sharma, S., & Sreekrishnan, T. R. (2017). Influence of
Process parameters on anaerobic digestion microbiome in bioenergy
production: towards an improved understanding. BioEnergy
Research, 10, 288–303. https://doi.org/10.1007/s12155-016-97890.
Kunz, A., Steinmetz, R. L. R., & Amaral, A. C. (2019). Fundamentals
of anaerobic digestion, biogas purification, use and treatment of the
digestate. Concord: Embrapa Pigs and Poultry.
Kwietniewska, E., & Tys, J. (2014). Process characteristics, inhibition
factors and methane yields of anaerobic digestion process, with
particular focus on microalgal biomass fermentation. Renewable
and Sustainable Energy Reviews, 34, 491–500.
Lebuhn, M., Liu, F., et al. (2008). Biogas production from
mono-digestion of maize silage–long-term process stability and
requirements. Water Science and Technology, 58, 1645–1651.
https://doi.org/10.2166/wst.2008.495.
Leite, W. R. M. (2015). Anaerobic digestion at mesophilic and
thermophilic temperatures of ether sludge using single-stage and
two-stage reactors. Thesis: Federal University of Santa Catarina.
Leite, V. D., & Lopes, W. S. et al. (2009). Anaerobic treatment of
organic solid waste with high and low concentration of solids.
Brazilian Journal of Sanitary and Environmental Engineering, 13,
190.
Liao, Q., Chang, J., et al. (2018). Bioreactorsfor microbial biomass and
energy conversion. Singapore: Green Energy and Technology.
Springer.
Bioconversion of Food Waste to Biogas
107
