Potential uses of cassava bagasse for bioenergy generation by pyrolysis and copyrolysis with a lignocellulosic waste

Cassava (Manihot esculenta) bagasse is a fibrous by-product generated in the tuber processing. After washing and peeling, the cassava is grated and then water is added in order to extract the starch. The mixture is filtered such that a rich starch solution and a wet solid residue can be separated. T...

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Autor principal: Gurevich Messina, L.I
Otros Autores: Bonelli, P.R, Cukierman, A.L
Formato: Capítulo de libro
Lenguaje:Inglés
Publicado: Nova Science Publishers, Inc. 2017
Acceso en línea:Registro en Scopus
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100 1 |a Gurevich Messina, L.I. 
245 1 0 |a Potential uses of cassava bagasse for bioenergy generation by pyrolysis and copyrolysis with a lignocellulosic waste 
260 |b Nova Science Publishers, Inc.  |c 2017 
270 1 0 |m Cukierman, A.L.; Universidad de Buenos Aires, Facultad de Ciencias Exactas y Naturales, Depto. de Industrias, Programa de Investigación y Desarrollo de Fuentes Alternativas de Materias Primas y Energía (PINMATE), Ciudad Universitaria.Argentina; email: analea@di.fcen.uba.ar 
506 |2 openaire  |e Política editorial 
504 |a Abnisa, F., Wan Daud, W.M.A., A review on co-pyrolysis of biomass: An optional technique to obtain a high-grade pyrolysis oil (2014) Energy Conversion and Management, 87, pp. 71-85 
504 |a Akhtar, J., Saidina Amin, N., A review on operating parameters for optimum liquid oil yield in biomass pyrolysis (2012) Renewable and Sustainable Energy Reviews, 16, pp. 5101-5109 
504 |a Aysu, T., Kuuk, M.M., Biomass pyrolysis in a fixed-bed reactor: Effects of pyrolysis parameters on product yields and characterization of products (2004) Energy, 64, pp. 1002-1025 
504 |a Basso, M.C., Cerrella, E.G., Buonomo, E.L., Bonelli, P.R., Cukierman, A.L., Thermochemical conversion of arundo donax into useful solid products (2005) Energy Sources, 27, pp. 1429-1438 
504 |a Ben Hassen-Trabelsi, A., Kraiem, T., Naoui, S., Belayouni, H., Pyrolysis of waste animal fats in a fixed-bed reactor: Production and characterization of bio-oil and biochar (2014) Waste Management, 34, pp. 210-218 
504 |a Bennett, N.M., Helle, S.S., Duff, S.J.B., Extraction and hydrolysis of levoglucosan from pyrolysis oil (2009) Bioresource Technology, 100, pp. 6059-6063 
504 |a Bonelli, P.R., Della Rocca, P.A., Cerrella, E.G., Cukierman, A.L., Effect of pyrolysis temperature on composition, surface properties and thermal degradation rates of brazil nut shells (2001) Bioresource Technology, 76, pp. 15-22 
504 |a Bonelli, P.R., Buonomo, E.L., Cukierman, A.L., Pyrolysis of sugarcane bagasse and copyrolysis with an argentinean subbituminous coal. Energy sources. part a: Recovery (2007) Utilization, and Environmental Effects, 29, pp. 731-740 
504 |a Bridgwater, A.V., Review of fast pyrolysis of biomass and product upgrading (2012) Biomass and Bioenergy, 38, pp. 68-94 
504 |a Cao, J.-P., Zhao, X.-Y., Morishita, K., Wei, X.-Y., Takarada, T., Fractionation and identification of organic nitrogen species from bio-oil produced by fast pyrolysis of sewage sludge (2010) Bioresource Technology, 101, pp. 7648-7652 
504 |a Chiaramonti, D., Oasmaa, A., Solantausta, Y., Power generation using fast pyrolysis liquids from biomass (2007) Renewable and Sustainable Energy Reviews, 11, pp. 1056-1086 
504 |a Cherubini, F., Stremann, A.H., Principles of biorefining (2011) Biofuels: Alternative Feedstocks & Conversion Processes, 324p. , Editors: A. Pandey, C. Larroche, S.C. Ricke, C.-G. Dussap, E. Gnansounou., Academic Press, Amsterdam, The Netherlands, Chapter 1 
504 |a Collard, F.-X., Blin, J., A review on pyrolysis of biomass constituents: Mechanisms and composition of the products obtained from the conversion of cellulose, hemicelluloses and lignin (2014) Renewable and Sustainable Energy Reviews, 38, pp. 594-608 
504 |a Cornelissen, T., Jans, M., Stals, M., Kuppens, T., Thewys, T., Janssens, G.K., Pastijn, H., Carleer, R., Flash co-pyrolysis of biomass: The influence of biopolymers (2009) Journal of Analytical and Applied Pyrolysis, 85, pp. 87-97 
504 |a Couhert, C., Commandre, J.-M., Salvador, S., Is it possible to predict gas yields of any biomass after rapid pyrolysis at high temperature from its composition in cellulose, hemicellulose and lignin? (2009) Fuel, 88, pp. 408-417 
504 |a Cukierman, A.L., Nunell, G.V., Fernández, M.E., De Celis, J., Kim, M.R., Gurevich Messina, L., Bonelli, P.R., Thermochemical processing of wood from invasive arboreal species for sustainable bioenergy generation and activated carbons production (2012) Invasive Species: Threats, Ecological Impact and Control Methods, pp. 1-46. , Editors J. J. Blanco and A. Fernandes. Nova Science Publishers Inc., N.Y., USA. Chapter 1 
504 |a Cukierman, A.L., Bonelli, P.R., Potentialities of biochars from different biomasses for climate change abatement by carbon capture and soil amelioration (2015) Advances in Environmental Research, 44, pp. 57-79. , Editor J.A. Daniels. Nova Science Publishers Inc., N.Y., USA 
504 |a Debiagi, F., Marim, B.M., Mali, S., Properties of cassava bagasse and polyvinyl alcohol biodegradable foams (2015) Journal of Polymers and the Environment, 23, pp. 269-276 
504 |a Fahmi, R., Bridgwater, A.V., Donnison, I., Yates, N., Jones, J.M., The effect of lignin and inorganic species in biomass on pyrolysis oil yields, quality and stability (2008) Fuel, 87, pp. 1230-1240 
504 |a Fan, J., Kalnes, T.N., Alward, M., Klinger, J., Sadehvandi, A., Shonnard, D.R., Life cycle assessment of electricity generation using fast pyrolysis bio-oil (2011) Renewable Energy, 36, pp. 632-641 
504 |a Fele Zilnik, L., Jazbinsek, A., Recovery of renewable phenolic fraction from pyrolysis oil (2012) Separation and Purification Technology, 86, pp. 157-170 
504 |a Frau, C., Ferrara, F., Orsini, A., Pettinau, A., Characterization of several kinds of coal and biomass for pyrolysis and gasification (2015) Fuel, 152, pp. 138-145 
504 |a Horne, P.A., Williams, P.T., Influence of temperature on the products from the flash pyrolysis of biomass (1996) Fuel, 75, pp. 1051-1059 
504 |a Jacobson, K., Maheria, K.C., Kumar Dalai, A., Bio-oil valorization: A review (2013) Renewable and Sustainable Energy Reviews, 23, pp. 91-106 
504 |a Jyothi, A.N., Sasikiran, K., Nambisan, B., Balagopalan, C., Optimisation of glutamic acid production from cassava starch factory residues using brevibacterium divaricatum (2005) Process Biochemistry, 40, pp. 3576-3579 
504 |a Kim, T.-S., Oh, S., Kim, J.-Y., Choi, I.-G., Choi, J.W., Study on the hydrodeoxygenative upgrading of crude bio-oil produced from woody biomass by fast pyrolysis (2014) Energy, 68, pp. 437-443 
504 |a Lehto, J., Oasmaa, A., Solantausta, Y., Kyto, M., Chiaramonti, D., Review of fuel oil quality and combustion of fast pyrolysis bio-oils from lignocellulosic biomass (2014) Applied Energy, 116, pp. 178-190 
504 |a Lin, T., Goos, E., Riedel, U., A sectional approach for biomass: Modelling the pyrolysis of cellulose (2013) Fuel Processing Technology, 115, pp. 246-253 
504 |a Long, H., Li, X., Wang, H., Jia, J., Biomass resources and their bioenergy potential estimation: A review (2013) Renewable and Sustainable Energy Reviews, 26, pp. 344-352 
504 |a Marques, P.T., Lima, A.M.F., Bianco, G., Laurindo, J.B., Borsali, R., Le Meins, J.-F., Soldi, V., Thermal properties and stability of cassava starch films cross-linked with tetraethylene glycol diacrylate (2006) Polymer Degradation and Stability, 91, pp. 726-732 
504 |a Menon, V., Rao, M., Trends in bioconversion of lignocellulose: Biofuels, platform chemicals & biorefinery concept (2012) Progress in Energy and Combustion Science, 38, pp. 522-550 
504 |a Mourant, D., Wang, Z., He, M., Wang, X.S., Garcia-Perez, M., Ling, K., Li, C.-Z., Mallee wood fast pyrolysis: Effects of alkali and alkaline earth metallic species on the yield and composition of bio-oil (2011) Fuel, 90, pp. 2915-2922 
504 |a Neves, D., Thunman, H., Matos, A., Tarelho, L., Gomez-Barea, A., Characterization and prediction of biomass pyrolysis products (2011) Progress in Energy and Combustion Science, 37, pp. 611-630 
504 |a (2016), http://webbook.nist.gov/chemistry; Ohra-Aho, T., Linnekoski, J., Catalytic pyrolysis of lignin by using analytical pyrolysis-gc-ms (2015) Journal of Analytical and Applied Pyrolysis, 113, pp. 186-192 
504 |a Oudenhoven, S.R.G., Westerhof, R.J.M., Aldenkamp, N., Brilman, D.W.F., Kersten, S.R.A., Demineralization of wood using wood-derived acid: Towards a selective pyrolysis process for fuel and chemicals production (2013) Journal of Analytical and Applied Pyrolysis, 103, pp. 112-118 
504 |a Pandey, A., Soccol, C.R., Nigam, P., Soccol, V.T., Vandenberghe, L.P., Mohan, R., Biotechnological potential of agro-industrial residues. Ii: Cassava bagasse (2000) Bioresource Technology, 74, pp. 81-87 
504 |a Pandey, A., Larroche, C., Ricke, S.C., Dussap, C.-G., Gnansounou, E., (2011) Biofuels: Alternative Feedstocks & Conversion Processes, , Academic Press, Amsterdam, The Netherlands 
504 |a Patwardhan Satrio, P.R.J.A., Brown, R.C., Shanks, B.H., Product distribution from fast pyrolysis of glucose-based carbohydrates (2009) Journal of Analytical and Applied Pyrolysis, 86, pp. 323-330 
504 |a Raveendran, K., Ganesh, A., Adsorption characteristics and pore-developement of biomass-pyrolysis char (1998) Fuel, 77, pp. 769-781 
504 |a Rouquerol, F., Rouquerol, J., Sing, K., Adsorption by powders and porous solids (1999) Principles, Methodology and Applications, , Academic Press Ed., Londres 
504 |a Sin, L.T., Rahman, W.A.W.A., Rahmat, A.R., Mokhtar, M., Determination of thermal stability and activation energy of polyvinyl alcohol-cassava starch blends (2011) Carbohydrate Polymers, 83, pp. 303-305 
504 |a Tripathi, M., Sahu, J.N., Ganesan, P., Effect of process parameters on production of biochar from biomass waste through pyrolysis: A review (2016) Renewable and Sustainable Energy Reviews, 55, pp. 467-481 
504 |a Ullah, K., Kumar Sharma, V., Dhingra, S., Braccio, G., Ahmad, M., Sofia, S., Assessing the lignocellulosic biomass resources potential in developing countries: A critical review (2015) Renewable and Sustainable Energy Reviews, 51, pp. 682-698 
504 |a Yang, H., Yan, R., Chen, H., Lee, D.H., Zheng, C., Characteristics of hemicellulose, cellulose and lignin pyrolysis (2007) Fuel, 86, pp. 1781-1788 
504 |a Yang, Z., Liu, X., Yang, Z., Zhuang, G., Bai, Z., Zhang, H., Guo, Y., Preparation and formation mechanism of levoglucosan from starch using a tubular furnace pyrolysis reactor (2013) Journal of Analytical and Applied Pyrolysis, 102, pp. 83-88 
504 |a Yin, R., Liu, R., Mei, Y., Fei, W., Sun, X., Characterization of bio-oil and bio-char obtained from sweet sorghum bagasse fast pyrolysis with fractional condensers (2013) Fuel, 112, pp. 96-104 
504 |a Zhang, L., Xu, C., Champagne, P., Overview of recent advances in thermo-chemical conversion of biomass (2010) Energy Conversion and Management, 51, pp. 969-982 
504 |a Zhang, M., Xie, L., Yin, Z., Khanal, S.K., Zhou, Q., Biorefinery approach for cassava-based industrial wastes: Current status and opportunities (2016) Bioresource Technology, 215, pp. 50-62 
520 3 |a Cassava (Manihot esculenta) bagasse is a fibrous by-product generated in the tuber processing. After washing and peeling, the cassava is grated and then water is added in order to extract the starch. The mixture is filtered such that a rich starch solution and a wet solid residue can be separated. This slurry, known as bagasse, comprises up to 20% of the weight of the processed cassava. In addition, as the extraction of starch from cassava is less efficient than those based on processing of potato or maize, the bagasse contains around 50-70% of starch on a dry basis. As it has no important use, with the exception of animal feed, the bagasse is usually rejected to water courses increasing the environmental pollution. Therefore, several strategies are being studied to find useful applications for this by-product. Pyrolysis of the bagasse and copyrolysis, namely the thermal degradation of mixtures of the bagasse and lignocellulosic biomass in inert atmosphere, could be an appealing possibility to employ this waste in order to generate green energy and/or other value-added products. In particular, growing attention is paid to the liquid products arising from pyrolysis/copyrolysis, commonly known as bio-oils, since they show many of the advantages of liquid fuels, such as inexpensive storage and transportation, and high energy density. In this scenario, the processes of pyrolysis of cassava starch, the major constituent of dry cassava bagasse, and of copyrolyisis of the starch with peanut hulls, an abundant lignocellulosic residue, were studied by performing experiments in a fixed-bed reactor at different process temperatures (400ºC – 600ºC). The pyrolysis of the starch led to a higher maximum yield of bio-oils that took place at a lower temperature than the copyrolysis (57 wt% at 400ºC vs. 49 wt% at 500ºC). Physichochemical characterization of the three kinds of pyrolysis/copyrolysis products with emphasis on the bio-oils was carried out mainly by proximate and ultimate analyses, Karl-Fischer titration, Fourier-transformed infrared spectroscopy, N2 adsorption, scanning electronic microscopy, and gas chromatography (GC-TCD and GC-MS). While the pyrolysis of the starch resulted in bio-oils with less nitrogen content, the copyrolysis produced bio-oils with lower content of oxygen and higher carbon percent. Water content of the bio-oils increased with rising process temperatures and it was lower for the liquids resulting from the pyrolysis of the starch. Also, the bio-oils arising from the pyrolysis of the starch presented more sugar compounds and fewer phenols. Besides, the pyrolysis of the starch led to a lower yield of solid products (bio-chars) than the copyrolysis. They showed greater high heating values (up to 35 MJ/kg) than those arising from the latter process in agreement with their larger carbon content and lower presence of ash. In addition, the bio-chars produced at the highest process temperature presented an incipient pore development, suggesting their possible use as rough adsorbents or as intermediary for further upgrading to activated carbons. Furthermore, the pyrolysis of cassava starch and copyrolysis with peanut hulls generated gases, principally CO2, CO, CH4 and H2, that could help to sustain the processes. © 2017 by Nova Science Publishers, Inc.  |l eng 
593 |a Universidad de Buenos Aires, Facultad de Ciencias Exactas y Naturales, Depto. de Industrias, Programa de Investigación y Desarrollo de Fuentes Alternativas de Materias Primas y Energía (PINMATE), Ciudad Universitaria., Buenos Aires, Argentina 
593 |a Universidad de Buenos Aires, Facultad de Farmacia y Bioquímica, Depto. de Tecnología Farmacéutica, Cátedra de Tecnología Farmacéutica II., Buenos Aires, Argentina 
593 |a Consejo Nacional de Investigaciones Científicas y Técnicas (CONICET), Buenos Aires, Argentina 
690 1 0 |a BIO-OILS 
690 1 0 |a BIOENERGY 
690 1 0 |a CASSAVA BAGASSE 
690 1 0 |a CASSAVA STARCH 
690 1 0 |a COPYROLYSIS 
690 1 0 |a PYROLYSIS 
700 1 |a Bonelli, P.R. 
700 1 |a Cukierman, A.L. 
773 0 |d Nova Science Publishers, Inc., 2017  |h pp. 335-356  |p Handb. on Cassava: Production, Potential Uses and Recent Advances  |z 9781536103076  |z 9781536102918  |t Handbook on Cassava: Production, Potential Uses and Recent Advances 
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856 4 0 |u https://hdl.handle.net/20.500.12110/paper_97815361_v_n_p335_GurevichMessina  |y Handle 
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