Blug, M., Leker, J., Plass, L., & Günther, A. (2014). Methanol
generation economics. In Methanol: The basic chemical and energy
feedstock of the future (pp. 603–618). Berlin, Heidelberg: Springer.
https://doi.org/10.1007/978-3-642-39709-7_7.
Burkholder, J., Libra, B., Weyer, P., Heathcote, S., Kolpin, D., Thorne,
P. S., & Wichman, M. (2007). Impacts of waste from concentrated
animal feeding operations on water quality. Environmental Health
Perspectives, 115(2), 308–312. https://doi.org/10.1289/ehp.8839.
Busato, C. J., Da Ros, C., Pellay, R., Barbierato, P., & Pavan,
P. (2020). Anaerobic membrane reactor: Biomethane from chicken
manure and high-quality effluent. Renewable Energy, 145, 1647–
1657. https://doi.org/10.1016/j.renene.2019.07.088.
Chadwick, D. R., Williams, J. R., Lu, Y., Ma, L., Bai, Z., Hou, Y., &
Misselbrook, T. H. (2020). Strategies to reduce nutrient pollution
from manure management in China. Frontiers of Agricultural
Science and Engineering, 7(1), 45–55. https://doi.org/10.15302/JFASE-2019293.
Chew, K. W., Chia, S. R., Yen, H. W., Nomanbhay, S., Ho, Y. C., &
Show, P. L. (2019). Transformation of biomass waste into
sustainable organic fertilizers. Sustainability, 11(8), 2266. https://
doi.org/10.3390/su11082266.
Dennehy, C., Lawlor, P. G., Gardiner, G. E., Jiang, Y., Shalloo, L., &
Zhan, X. (2017). Stochastic modelling of the economic viability of
on-farm co-digestion of pig manure and food waste in Ireland.
Applied Energy, 205, 1528–1537. https://doi.org/10.1016/j.
apenergy.2017.08.101.
DOE. (2000). Biomass cofiring: a renewable alternative for utilities.
DOE/GO-102000-1055. U.S. Department of Energy, National
Renewable Energy Laboratory. Report.
Drinkwater, L. E., Schipanski, M., Snapp, S., & Jackson, L. E. (2017).
Ecologically based nutrient management. In Agricultural Systems
(pp. 203–257). Academic Press. https://doi.org/10.1016/B978-0-12802070-8.00007-4.
Ebner, P. (2017). CAFOs and public health: pathogens and manure.
Purdue Extension Animal Sciences. Purdue University. Web, 24.
El-Mashad, H. M., Zhang, R., Arteaga, V., Rumsey, T., & Mitloehner,
F. M. (2011). Volatile fatty acids and alcohols production during
anaerobic storage of dairy manure. Transactions of the ASABE, 54
(2), 599–607. https://doi.org/10.13031/2013.36463
El-Sheekh, M. M., Farghl, A. A., Galal, H. R., & Bayoumi, H. S.
(2016). Bioremediation of different types of polluted water using
microalgae. Rendiconti Lincei, 27(2), 401–410. https://doi.org/10.
1007/s12210-015-0495-1.
EREN/DOE. (2000). Technologies-cofiring-technical description. From
biopower, energy efficiency and renewable energy network, U.S.
Department of Energy. http://www.eren.doe.gov/biopower/projects/
ia_tech_co_techdes.htm. Report, Accessed in June 2020.
Fournel, S., Charbonneau, É., Binggeli, S., Dion, J. M., Pellerin, D.,
Chantigny, M. H., & Godbout, S. (2018). Determining environmental benefits and economic costs of different manure handling
strategies in Quebec’s dairy production using farm simulation. In
10th International Livestock Environment Symposium (ILES X)
(p. 1). American Society of Agricultural and Biological Engineers.
https://doi.org/10.13031/iles.18-026.
Gajdoš, R. (1998). Bioconversion of organic waste by the year 2010:
To recycle elements and save energy. Resources, Conservation and
Recycling, 23(1–2), 67–86. https://doi.org/10.1016/S0921-3449(98)
00011-1.
García-González, M. C., Hernández, D., Molinuevo-Salces, B., &
Riaño, B. (2019). Positive impact of biogas chain on GHG
reduction. In: Improving Biogas Production (pp. 217–242). Cham:
Springer. https://doi.org/10.1007/978-3-030-10516-7_10.
Gontard, N., Sonesson, U., Birkved, M., Majone, M., Bolzonella, D.,
Celli, A., & Schaer, B. (2018). A research challenge vision
regarding management of agricultural waste in a circular bio-based
economy. Critical Reviews in Environmental Science and Technology, 48(6), 614–654. https://doi.org/10.1080/10643389.2018.
1471957.
Goss, M., & Richards, C. (2008). Development of a risk-based index
for source water protection planning, which supports the reduction
of pathogens from agricultural activity entering water resources.
Journal of environmental management, 87(4), 623–632. https://doi.
org/10.1016/j.jenvman.2006.12.048.
Guo, M., Li, H., Baldwin, B., & Morrison, J. (2020). Thermochemical
processing of animal manure for bioenergy and biochar. Animal
Manure: Production, Characteristics, Environmental Concerns,
and Management, 67, 255–274. https://doi.org/10.2134/
asaspecpub67.c21.
Hanifzadeh, M., Nabati, Z., Longka, P., Malakul, P., Apul, D., & Kim,
D. S. (2017). Life cycle assessment of superheated steam drying
technology as a novel cow manure management method. Journal of
Environmental Management, 199, 83–90. https://doi.org/10.1016/j.
jenvman.2017.05.018.
Hubbard, R. K., Newton, G. L., & Hill, G. M. (2004). Water quality
and the grazing animal. Journal of animal science, 82(suppl_13),
E255–E263.
ISU. (2000). From cow chips to cow barns. Iowa State University,
USA. Report.
Joshi, J., & Wang, J. (2018). Manure management coupled with
bioenergy production: An environmental and economic assessment
of large dairies in New Mexico. Energy Economics, 74, 197–207.
https://doi.org/10.1016/j.eneco.2018.06.008.
Khalid, A., Arshad, M., Anjum, M., Mahmood, T., & Dawson, L.
(2011). The anaerobic digestion of solid organic waste. Waste
Management, 31(8), 1737–1744. https://doi.org/10.1016/j.wasman.
2011.03.021.
Khalil, T. M., Higgins, S. S., Ndegwa, P. M., Frear, C. S., & Stöckle, C.
O. (2016) Assessing the effect of different treatments on decomposition rate of dairy manure. Journal of Environmental Management, 182, 230–237. https://doi.org/10.1016/j.jenvman.2016.07.056
.
Kleinman, P. J., Buda, A. R., Sharpley, A. N., & Khosla, R. (2017).
Elements of precision manure management. precision conservation:
Geospatial techniques for agricultural and natural resources
conservation, Vol. 59, pp. 165–192. https://doi.org/10.2134/
agronmonogr59.c9.
Kumaragamage, D., & Akinremi, O. O. (2018). Manure phosphorus:
Mobility in soils and management strategies to minimize losses.
Current Pollution Reports, 4(2), 162–174. https://doi.org/10.1007/
s40726-018-0084-x.
Liu, Z., & Wang, X. (2020). Manure treatment and utilization in
production systems. In: Animal Agriculture (pp. 455–467). Academic Press. https://doi.org/10.1016/B978-0-12-817052-6.00026-4.
Loyon, L. (2017). Overview of manure treatment in France. Waste
Management, 61, 516–520. https://doi.org/10.1016/j.wasman.2016.
11.040.
Mahvi, A. H. (2008). Sequencing batch reactor: A promising technology in wastewater treatment.
Marszałek, M., Kowalski, Z., & Makara, A. (2018). Emission of
greenhouse gases and odorants from pig slurry-effect on the
environment and methods of its reduction. Ecological Chemistry
and Engineering S, 25(3), 383–394. https://doi.org/10.1515/eces2018-0026.
Miner, J. R., & Moore, J. A. (2000). More animals, more waste.
Resource, 7(10), 11–12.
Moharir, R. V., Rena, P. G., & Kumar, S. (2019). Bio-drying of solid
waste. Biological Processing of Solid Waste, 129. https://doi.org/10.
1201/b22333-7.
Murry, M. A., Murinda, S. E., Huang, S., Ibekwe, A. M., Schwartz, G.,
& Lundquist, T. (2019). Bioconversion of agricultural wastes from
Treatment and Bioconversion of Manure Effluents
313
generation economics. In Methanol: The basic chemical and energy
feedstock of the future (pp. 603–618). Berlin, Heidelberg: Springer.
https://doi.org/10.1007/978-3-642-39709-7_7.
Burkholder, J., Libra, B., Weyer, P., Heathcote, S., Kolpin, D., Thorne,
P. S., & Wichman, M. (2007). Impacts of waste from concentrated
animal feeding operations on water quality. Environmental Health
Perspectives, 115(2), 308–312. https://doi.org/10.1289/ehp.8839.
Busato, C. J., Da Ros, C., Pellay, R., Barbierato, P., & Pavan,
P. (2020). Anaerobic membrane reactor: Biomethane from chicken
manure and high-quality effluent. Renewable Energy, 145, 1647–
1657. https://doi.org/10.1016/j.renene.2019.07.088.
Chadwick, D. R., Williams, J. R., Lu, Y., Ma, L., Bai, Z., Hou, Y., &
Misselbrook, T. H. (2020). Strategies to reduce nutrient pollution
from manure management in China. Frontiers of Agricultural
Science and Engineering, 7(1), 45–55. https://doi.org/10.15302/JFASE-2019293.
Chew, K. W., Chia, S. R., Yen, H. W., Nomanbhay, S., Ho, Y. C., &
Show, P. L. (2019). Transformation of biomass waste into
sustainable organic fertilizers. Sustainability, 11(8), 2266. https://
doi.org/10.3390/su11082266.
Dennehy, C., Lawlor, P. G., Gardiner, G. E., Jiang, Y., Shalloo, L., &
Zhan, X. (2017). Stochastic modelling of the economic viability of
on-farm co-digestion of pig manure and food waste in Ireland.
Applied Energy, 205, 1528–1537. https://doi.org/10.1016/j.
apenergy.2017.08.101.
DOE. (2000). Biomass cofiring: a renewable alternative for utilities.
DOE/GO-102000-1055. U.S. Department of Energy, National
Renewable Energy Laboratory. Report.
Drinkwater, L. E., Schipanski, M., Snapp, S., & Jackson, L. E. (2017).
Ecologically based nutrient management. In Agricultural Systems
(pp. 203–257). Academic Press. https://doi.org/10.1016/B978-0-12802070-8.00007-4.
Ebner, P. (2017). CAFOs and public health: pathogens and manure.
Purdue Extension Animal Sciences. Purdue University. Web, 24.
El-Mashad, H. M., Zhang, R., Arteaga, V., Rumsey, T., & Mitloehner,
F. M. (2011). Volatile fatty acids and alcohols production during
anaerobic storage of dairy manure. Transactions of the ASABE, 54
(2), 599–607. https://doi.org/10.13031/2013.36463
El-Sheekh, M. M., Farghl, A. A., Galal, H. R., & Bayoumi, H. S.
(2016). Bioremediation of different types of polluted water using
microalgae. Rendiconti Lincei, 27(2), 401–410. https://doi.org/10.
1007/s12210-015-0495-1.
EREN/DOE. (2000). Technologies-cofiring-technical description. From
biopower, energy efficiency and renewable energy network, U.S.
Department of Energy. http://www.eren.doe.gov/biopower/projects/
ia_tech_co_techdes.htm. Report, Accessed in June 2020.
Fournel, S., Charbonneau, É., Binggeli, S., Dion, J. M., Pellerin, D.,
Chantigny, M. H., & Godbout, S. (2018). Determining environmental benefits and economic costs of different manure handling
strategies in Quebec’s dairy production using farm simulation. In
10th International Livestock Environment Symposium (ILES X)
(p. 1). American Society of Agricultural and Biological Engineers.
https://doi.org/10.13031/iles.18-026.
Gajdoš, R. (1998). Bioconversion of organic waste by the year 2010:
To recycle elements and save energy. Resources, Conservation and
Recycling, 23(1–2), 67–86. https://doi.org/10.1016/S0921-3449(98)
00011-1.
García-González, M. C., Hernández, D., Molinuevo-Salces, B., &
Riaño, B. (2019). Positive impact of biogas chain on GHG
reduction. In: Improving Biogas Production (pp. 217–242). Cham:
Springer. https://doi.org/10.1007/978-3-030-10516-7_10.
Gontard, N., Sonesson, U., Birkved, M., Majone, M., Bolzonella, D.,
Celli, A., & Schaer, B. (2018). A research challenge vision
regarding management of agricultural waste in a circular bio-based
economy. Critical Reviews in Environmental Science and Technology, 48(6), 614–654. https://doi.org/10.1080/10643389.2018.
1471957.
Goss, M., & Richards, C. (2008). Development of a risk-based index
for source water protection planning, which supports the reduction
of pathogens from agricultural activity entering water resources.
Journal of environmental management, 87(4), 623–632. https://doi.
org/10.1016/j.jenvman.2006.12.048.
Guo, M., Li, H., Baldwin, B., & Morrison, J. (2020). Thermochemical
processing of animal manure for bioenergy and biochar. Animal
Manure: Production, Characteristics, Environmental Concerns,
and Management, 67, 255–274. https://doi.org/10.2134/
asaspecpub67.c21.
Hanifzadeh, M., Nabati, Z., Longka, P., Malakul, P., Apul, D., & Kim,
D. S. (2017). Life cycle assessment of superheated steam drying
technology as a novel cow manure management method. Journal of
Environmental Management, 199, 83–90. https://doi.org/10.1016/j.
jenvman.2017.05.018.
Hubbard, R. K., Newton, G. L., & Hill, G. M. (2004). Water quality
and the grazing animal. Journal of animal science, 82(suppl_13),
E255–E263.
ISU. (2000). From cow chips to cow barns. Iowa State University,
USA. Report.
Joshi, J., & Wang, J. (2018). Manure management coupled with
bioenergy production: An environmental and economic assessment
of large dairies in New Mexico. Energy Economics, 74, 197–207.
https://doi.org/10.1016/j.eneco.2018.06.008.
Khalid, A., Arshad, M., Anjum, M., Mahmood, T., & Dawson, L.
(2011). The anaerobic digestion of solid organic waste. Waste
Management, 31(8), 1737–1744. https://doi.org/10.1016/j.wasman.
2011.03.021.
Khalil, T. M., Higgins, S. S., Ndegwa, P. M., Frear, C. S., & Stöckle, C.
O. (2016) Assessing the effect of different treatments on decomposition rate of dairy manure. Journal of Environmental Management, 182, 230–237. https://doi.org/10.1016/j.jenvman.2016.07.056
.
Kleinman, P. J., Buda, A. R., Sharpley, A. N., & Khosla, R. (2017).
Elements of precision manure management. precision conservation:
Geospatial techniques for agricultural and natural resources
conservation, Vol. 59, pp. 165–192. https://doi.org/10.2134/
agronmonogr59.c9.
Kumaragamage, D., & Akinremi, O. O. (2018). Manure phosphorus:
Mobility in soils and management strategies to minimize losses.
Current Pollution Reports, 4(2), 162–174. https://doi.org/10.1007/
s40726-018-0084-x.
Liu, Z., & Wang, X. (2020). Manure treatment and utilization in
production systems. In: Animal Agriculture (pp. 455–467). Academic Press. https://doi.org/10.1016/B978-0-12-817052-6.00026-4.
Loyon, L. (2017). Overview of manure treatment in France. Waste
Management, 61, 516–520. https://doi.org/10.1016/j.wasman.2016.
11.040.
Mahvi, A. H. (2008). Sequencing batch reactor: A promising technology in wastewater treatment.
Marszałek, M., Kowalski, Z., & Makara, A. (2018). Emission of
greenhouse gases and odorants from pig slurry-effect on the
environment and methods of its reduction. Ecological Chemistry
and Engineering S, 25(3), 383–394. https://doi.org/10.1515/eces2018-0026.
Miner, J. R., & Moore, J. A. (2000). More animals, more waste.
Resource, 7(10), 11–12.
Moharir, R. V., Rena, P. G., & Kumar, S. (2019). Bio-drying of solid
waste. Biological Processing of Solid Waste, 129. https://doi.org/10.
1201/b22333-7.
Murry, M. A., Murinda, S. E., Huang, S., Ibekwe, A. M., Schwartz, G.,
& Lundquist, T. (2019). Bioconversion of agricultural wastes from
Treatment and Bioconversion of Manure Effluents
313
