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References
Agarwal, A., Dintwa, E., Joshi, P., 2016. Analysis of agro residue burning and present sce-
nario in key areas of northern plains in India. Int. J. Adv. Res. 4 (3), 1499 1509.
Al Arni, S., Bosio, B., Arato, E., 2010. Syngas from sugarcane pyrolysis: an experimental
study for fuel cell applications. Renew. Energy 35, 29 35.
Alfonsı ´n, V., Maceiras, R., Gutie ´rrez, C., 2019. Bioethanol production from industrial algae
waste. Waste Manage. 87, 791 797.
ASTM E17551-01, 1755. Standard Test Method for Ash in Biomass. ASTM International,
West Conshohocken, PA.
ASTM E1756-08, 1756. Standard Test Method for Determination of Total Solids in Biomass.
ASTM International, West Conshohocken, PA.
ASTM E872-82, 2013. Standard Test Method for Volatile Matter in the Analysis of
Particulate Wood Fuels. ASTM International, West Conshohocken, PA.
Azeez, A.M., Meier, D., Odermatt, J., Willner, T., 2010. Fast pyrolysis of African and
European lignocellulosic biomasses using Py-GC/MS and fluidized bed reactor. Energy
Fuels 24, 2078 2085.
Azhar, S.H.M., Abdulla, R., Jamboa, S.A., Marbawia, H., Gansaua, J.A., Faika, A.A.M.,
et al., 2017. Yeasts in sustainable bioethanol production: a review. Biochem. Biophys.
Rep. 10, 52 61.
Bala, R., Gautam, V., Mondal, M.K., 2019. Improved biogas yield from organic fractions of
municipal solid waste as preliminary step for fuel cell technology and hydrogen genera-
tion. Int. J. Hydrogen Energy 44, 164 173.
Biswas, A.K., Umeki, K., Yang, W.H., Blasiak, W., 2011. Change of pyrolysis characteristics
and structure of woody biomass due to steam explosion pretreatment. Fuel Process
Technol. 92, 1849 1854.
Bridgwater, A.V., 2004. Biomass fast pyrolysis. Therm. Sci. 8 (2), 21 49.
Bundhoo, Z.M.A., Mudhoo, A., Mohee, R., 2013. Promising unconventional pretreatments
for lignocellulosic biomass. Crit. Rev. Environ. Sci. Technol. 43, 2140 2211.
Caballero, J.A., Conesa, J.A., Font, R., Marcilla, A., 1997. Pyrolysis kinetics of almond shells
and olive stones considering their organic fractions. J. Anal. Appl. Pyrolysis 42, 159 175.
Cai, J., He, Y., Yu, X., Banks, S.W., Yang, Y., Zhang, X., et al., 2017. Review of physico-
chemical properties and analytical characterization of lignocellulosic biomass. Renew.
Sustain. Energy Rev. 76, 309 322.
Carrere, H., Dumas, C., Battimelli, A., Batstone, D.J., Delgenes, J.P., Steyer, J.P., et al.,
2010. Pretreatment methods to improve sludge anaerobic degradability: a review. J.
Hazard. Mater. 183, 1 15.
Dale, B., Leong, C., Pham, T., Esquivel, V., Rios, I., Latimer, V., 1996. Hydrolysis at low
enzyme levels: application of the AFEX process. Bioresour. Technol. 56, 111 116.
Das, P., Ganesh, A., 2003. Bio-oil from pyrolysis of cashew nut shell - a near fuel. Biomass
Bioenergy 25, 113 117.
Demirbas, A., Demirbas, A., 1997. Calculation of higher heating values of biomass fuels.
Fuel 76, 431 434.
Divya, D., Gopinath, L.R., Christy, P.M., 2015. A review on current aspects and diverse pro-
spects for enhancing biogas production in sustainable means. Renew. Sustain. Energy
Rev. 42, 690 699.
Edelmann, W., Baier, U., Engeli, H., 2005. Environmental aspects of the anaerobic digestion
of the OFMSW and agricultural wastes. Water Sci. Technol. 52, 553 559.