Page 161 - Refining Biomass Residues for Sustainable Energy and Bioproducts
P. 161
132 Refining Biomass Residues for Sustainable Energy and Bioproducts
Task 42 Biorefineries. In: Presentation Held at the Biorefinery Course Adding Value to
the Sustainable Utilisation of Biomass. June 12, 2009, Ghent, Belgium.
Kamm, B., Kamm, M., 2007. Biorefineries—multi product processes. White Biotechnology.
Springer, pp. 175 204.
Karmee, S.K., 2017. Noodle waste based biorefinery: an approach to address fuel, waste
management and sustainability. Biofuels 9, 395 404.
Kiran, E.U., Trzcinski, A.P., Hg, W.J., Liu, Y., 2014. Enzyme production from food wastes
using a biorefiney concept. Waste Biomass Valor. 5, 903 917.
Kuhad, R.C., Gupta, R., Khasa, Y.P., Singh, A., Zhang, Y.-H.P., 2011. Bioethanol production
from pentose sugars: current status and future prospects. Renew. Sustain. Energy Rev.
15 (4), 950 962.
Liu, Z., Liao, W., Liu, Y., 2016. A sustainable biorefinery to convert agricultural residues
into value-added chemicals. Biotechnol. Biofuels 9, 197.
Maity, S.K., 2015. Opportunities, recent trends and challenges of integrated biorefinery: Part
1. Renew. Sustain. Energy Rev. 43, 1427 1445.
Miandad, R., Barakat, M.A., Aburiazaiza, A.S., Rehan, M., Nizami, A.S., 2016. Catalytic
pyrolysis of plastic waste: a review. Process Saf. Environ. Prot. 102, 822 838.
Mohan, S.V., Butti, S.K., Amulya, K., Dahiya, S., Modestra, J.A., 2016. Waste biorefinery: a
new paradigm for a sustainable bioelectro economy. Trends Biotechnol. 34 (11),
852 855.
Murata, K., Liu, Y., Inaba, M., Takahara, I., 2012. Catalytic fast pyrolysis of jatropha wastes.
J. Anal. Appl. Pyrolysis 94, 75 82.
Nizami, A.S., Rehan, M., Waqas, M., Naqvi, M., Ouda, O.K.M., Shahzad, K., et al., 2017.
Waste biorefineries: enabling circular economies in developing countries. Bioresour.
Technol. 241, 1101 1117.
Pande, M., Bhaskarwar, A.N., 2012. Chapter 1. Biomass conversion to energy. In: Baskar,
C., et al., (Eds.), Biomass Conversion. Springer-Verlag, Berlin Heidelberg.
Rathi, S., 2006. Alternative approaches for better municipal solid waste management in
Mumbai, India. J. Waste Manage. 26 (10), 1192 1200.
Rathore, D., Nizami, A.S., Pant, D., Singh, A., 2016. Key issues in estimating energy and
greenhouse gas savings of biofuels: challenges and perspectives. Biofuel Res. J. 10,
380 393.
Sarma, S.J., Ayadi, M., Brar, S.K., 2016. Chapter 2 Biorefinery: general Overview.
Platform Chemical Biorefinery. Future Green Industry, pp. 21 32.
Schmieder, H., Abeln, J., Boukis, N., Dinjus, E., Kruse, A., Kluth, M., et al., 2000.
Hydrothermal gasification of biomass and organic wastes. J. Supercrit. Fluids 17,
145 153.
Shahzad, K., Nizami, A.S., Sagir, M., Rehan, M., Maier, S., Khan, M.Z., et al., 2017.
Biodiesel production potential from fat fraction of municipal waste in Makkah. PLoS
One 12 (2), e0171297. Available from: https://doi.org/10.1371/journal.pone.0171297.
Themelis, N., 2006. Energy Recovery from Global Waste to Energy. Waste to Energy
Research and Technological Council.
Thomas, L., Larroche, C., Pandey, A., 2013. Current developments in solid-state fermenta-
tion. Biochem. Eng. J. 81, 146 161.
UN-DESA: United Nations—Department of Economic and Social Affairs, Population
Division, 2012. World Population Prospects: The 2012 Revision. ST/ESA/SER.A/345.
United Nations, New York.
UNEP, 2011. Towards a Green Economy: Pathways to Sustainable Development and Poverty
Eradication. United Nations Environment Programme (UNEP).