Production of Fuel Briquettes from Bamboo and Agricultural Residue as an Alternative to Charcoal — Oak Academic Publishing
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Production of Fuel Briquettes from Bamboo and Agricultural Residue as an Alternative to Charcoal
Division of Industrial Chemistry, Department of Chemistry, School Physical Sciences, College of Natural Sciences, Makerere University, Kampala, Uganda
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Division of Industrial Chemistry, Department of Chemistry, School Physical Sciences, College of Natural Sciences, Makerere University, Kampala, Uganda
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Energy Research and Development Center, Faculty of Engineering, Ndejje University, Kampala, Uganda
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Uganda National Renewable Energy and Energy Efficiency Alliance (UNREEEA), Kampala, Uganda
1 Division of Industrial Chemistry, Department of Chemistry, School Physical Sciences, College of Natural Sciences, Makerere University, Kampala, Uganda
2 Division of Industrial Chemistry, Department of Chemistry, School Physical Sciences, College of Natural Sciences, Makerere University, Kampala, Uganda
3 Energy Research and Development Center, Faculty of Engineering, Ndejje University, Kampala, Uganda
4 Uganda National Renewable Energy and Energy Efficiency Alliance (UNREEEA), Kampala, Uganda
The study was done to explore the potential of producing fuel briquettes that could meet the need for energy in Uganda, especially Kampala city. The primary objective of this work was to produce fuel briquettes from homogene ous and heterogeneous combination s of carbonized maize cobs, Bamboo poles and charcoal dust. For the primary objective to be achieved, the main activities which were performed included; chopping bamboo poles, sorting maize cobs, carbonization, crushing, binder preparation, mixing, extrusion, drying and quality assessment of the fuel briquettes. The maize cobs and charcoal dust used for this work were purchased from the farmers and charcoal sellers respectively from the districts of Luwero and Nakaseke. Bamboo poles were provided by Divine bamboo group. The homogenous combinations included 100% maize cob char, 100% bamboo char and 100% charcoal dust. Heterogeneous combinations included 75% bamboo char + 25% charcoal dust and 25% bamboo char + 75% charcoal dust. The test results for both homogenous and heterogeneous combinations of fuel briquettes had ranges of moisture content 8% - 11%, Volatile matter 12% - 23%, Ash content 33% - 39%, Heating Value 16 - 22 MJ/Kg, Fixed Carbon 30% - 51% and moisture content 8% - 9%, Volatile matter 13% - 19%, Ash content 27% - 44%, Heating Value 16 - 18 MJ/Kg, Fixed Carbon 30% - 51% respectively. The test results for drop re sistance, density and Compressibility strength for both homogeneous and heterogeneous combinations had ranges of 7% - 56%, 214 - 941 kg/m 3 , 0.077 - 0.544 N/mm 2 and 12% - 28%, 869.1 - 958.3 kg/m 3 , 0.124 - 0.295 N/mm 2 respectively. These results were within the ranges reported in the literature especially for the heterogeneous combinations. Therefore, there is the possibility to use bamboo woody feedstock in combination with other agricultural waste feedstock for the production of fuel briquettes. We can in crease the quality and production of fuel briquettes by using alternative feedstock sources rather than degrading the environment through deforestation.
KeywordsBioenergySolid BiofuelsBriquette Quality
[1]Uganda Bureau of Statistics (UBOS) (2018) Uganda National Household Survey 2016/17. UBOS, Kampala.
GACC, Global Alliance for Clean Cookstoves (2017) Comparative Analysis of Fuels for Cooking: Life Cycle Environmental Impacts and Economic and Social Considerations. http://cleancookstoves.org/assets-facit/Comparative-Analysis-for-Fuels-FullReport.pdf
GVEP International (2012) Uganda Market Assessment Report. http://cleancookstoves.org/resources/178.html
GVEP International Report (2012) Briquette Businesses in Uganda the Potential for Briquette Enterprises to Address the Sustainability of the Ugandan Biomass Fuel Market.
FAO (2016) Wood Energy Catalogue, National Charcoal Survey for Uganda 2015, Final Report.
Ministry of Energy and Mineral Development (MEMD) (2019) Priorities and Issues Paper.
Nantongo, I. (2017) Techno-Economic Feasibility of a Gasification Plant for Rural Electrification, under a Bamboo Based Sustainable Economic Model: Case of Bududa District in Eastern Uganda, 2016-2017.
Brunerová, A., Roubík, H. and Brožek, M. (2018) Bamboo Fiber and Sugarcane Skin as a Bio-Briquette Fuel. Energies, 11, 2186. https://doi.org/10.3390/en11092186
Akinlabi, E.T., Anane-Fenin, K. and Akwada, D.R. (2017) Bamboo: The Multipurpose Plant. Springer International Publishing, Cham, Switzerland, 1-37. https://doi.org/10.1007/978-3-319-56808-9
Ohrnberger, D. (1999) The Bamboos of the World. Elsevier, Amsterdam.
Tumuluru, J.S., Sokhansanj, S., Wright, C.T., Boardman, R.D. and Yancey, N. (2011) A Review on Biomass Classification and Composition, Co-Firing Issues and Pretreatment Methods. https://inldigitallibrary.inl.gov/sites/sti/sti/5094573.pdf
Stolarski, M.J., Szczukowski, S., Tworkowski, J., Krzyzaniak, M., Gulczynski, P. and Mleczek, M. (2013) Comparison of Quality and Production Cost of Briquettes Made from Agricultural and Forest Origin Biomass. Renewable Energy, 57, 20-26. https://doi.org/10.1016/j.renene.2013.01.005
McKendry, P. (2002) Energy Production from Biomass (Part 1): Overview of Biomass. Bioresource Technology, 83, 37-46. https://doi.org/10.1016/S0960-8524(01)00118-3
EN ISO 17225-1 (2015) Solid Biofuels—Fuel Specifications and Classes—Part 1: General Requirements. ISO, Geneva.
Falemara, B.C., Joshua, V.I., Aina, O.O. and Nuhu, R.D. (2018) Performance Evaluation of the Physical and Combustion Properties of Briquettes Produced from Agro-Wastes and Wood Residues. Recycling, 3, 37. https://doi.org/10.3390/recycling3030037
Adegoke, I.A., Baiyewu, R.A., Aina, K.S., Adesope, A.S., Adejoba, A.L. and Abah, G.B. (2010) Combustion Properties of Briquette Produced from Mixed Sawdust of Tropical Wood Species. Climate Change and Forest Resources Management: The Way Forward. Proceedings of the 2nd Biennial National Conference of the Forests and Forest Products Society, Akure, 16-18 April 2010, 368-371.
Emerhi, E.A. (2011) Physical and Combustion Properties of Briquettes Produced from Sawdust of Three Hardwood Species and Different Organic Binders. Advances in Applied Science Research, 2, 236-246.
Ige, A.R., Elinge, C.M., Hassan, L.G., Adegoke, I.A. and Ogala, H. (2018) Effect of Binder on Physicochemical Properties of Fuel Briquettes Produced from Watermelon Peels. AASCIT Journal of Energy, 5, 23-27.
Shukla, S. and Vyas, S. (2015) Study of Biomass Bio Pellets, Factors Affecting Its Performance and Technologies Based on Bio Pellets. IOSR Journal of Environmental Science, Toxicology and Food Technology, 9, 37-44.
Ikelle, I.I. and Anyigor, C. (2014) Comparative Thermal Analysis of the Properties of Coal and Corn Cob Briquettes. IOSR Journal of Applied Chemistry, 7, 93-97. https://doi.org/10.9790/5736-07619397
Ogbuagu, J., Onuegbu, T., Ikelle, I.I., Chimezie, O. and Anyigor, C. (2013) Production and Analysis of the Heating Properties of Coal and Rice Husk Briquettes Using CaSO4 as a Binder. Journal of Physical Science and Innovation, 1, 35-44.
Akowuah, O.J., Kermausuor, F. and Mitchual, J.S. (2012) Physicochemical Characteristics and Market Potential of Sawdust Charcoal Briquette. International Journal of Energy and Environmental Engineering, 3, 18-26. https://doi.org/10.1186/2251-6832-3-20
Adetogun, A.C., Ogunjobi, K.M. and Are, D.B. (2014) Combustion Properties of Briquettes Produced from Maize Cob of Different Particle Sizes. Journal of Research in Forestry, Wildlife and Environment, 6, 28-38.
Katimbo, A., Nicholas, K., Simon, K., Hussein, B.K. and Peter, T. (2014) Potential of Densification of Mango Waste and Effect of Binders on Produced Briquettes. Agricultural Engineering International: CIGR Journal, 16, 146-155.
Navalta, C.J.L.G., Banaag, K.G.C., Raboy, V.A.O., Go, A.W., Cabatingan, L.K. and Ju, Y.-H. (2020) Solid Fuel from Co-Briquetting of Sugarcane Bagasse and Rice Bran. Renewable Energy, 147, 1941-1958. https://doi.org/10.1016/j.renene.2019.09.129
Feng, Z., Zhang, T., Yang, J., Gao, Q., Ni, L. and Liu, Z. (2020) Fuel Characteristics of Briquettes Manufactured by Natural Stacking Bamboo/Chinese Fir Mixtures. ACS Omega, 5, 25281-25288. https://doi.org/10.1021/acsomega.0c03413
Morey, R.V. and Kaliyan, N. (2009) Factors Affecting Strength and Durability of Densified Biomass Products. Biomass Bioenergy, 33, 337-359. https://doi.org/10.1016/j.biombioe.2008.08.005
Adapa, T.L.P. and Kashaninejad, M. (2011) Biomass Feedstock Pre-Processing—Part 2: Densification. In: Dos Santos Bernardes, M.A., Ed., Biofuel’s Engineering Process Technology, InTech, Rijeka, Chapter 19, 439-464. https://doi.org/10.5772/18495
Wang, Z., Qu, L., Qian, J., He, Z. and Yi, S. (2019) Effects of the Ultrasound-Assisted Pretreatments Using Borax and Sodium Hydroxide on the Physicochemical Properties of Chinese Fir. Ultrasonics Sonochemistry, 50, 200-207. https://doi.org/10.1016/j.ultsonch.2018.09.017
Karunanithy, C., Wang, Y., Muthukumarappan, K. and Pugalendhi, S. (2012) Physiochemical Characterization of Briquettes Made from Different Feedstocks. Biotechnology Research International, 2012, Article ID: 165202. https://doi.org/10.1155/2012/165202
Obernberger, I. and Thek, G. (2004) Physical Characterisation and Chemical Composition of Densified Biomass Fuels with Regard to Their Combustion Behaviour. Biomass and Bioenergy, 27, 653-669. https://doi.org/10.1016/j.biombioe.2003.07.006
Obi, O.F. and Okongwu, K.C.H. (2016) Characterization of Fuel Briquettes Made from a Blend of Rice Husk and Palm Oil Mill Sludge. Biomass Conversion and Biorefinery, 6, 449-456. https://doi.org/10.1007/s13399-016-0206-x
Wakchaure, G.C. and Mani, I. (2009) Effect of Binders and Pressures on Physical Quality of Some Biomass Briquettes. Journal of Agricultural Engineering, 46, 24-30. https://www.researchgate.net/profile/G_C_Wakchaure/publication/235944947_Effect_of_Binders_and_Pressures_on_Physical_Quality_of_Some_Biomass_Briquettes/links/02e7e51499eca04887000000.pdf