Optimal composition of biomass pellet for enhancing calorific value using MOGA-ANN: a mixture of paddy straw, sawdust, cow dung, and paper pulp
暂无分享,去创建一个
[1] J. Gorzelany,et al. The Possibility of Using Waste Biomass from Selected Plants Cultivated for Industrial Purposes to Produce a Renewable and Sustainable Source of Energy , 2023, Applied Sciences.
[2] O. Cvetković,et al. Energy and emission properties of burley tobacco stalk briquettes and its combinations with other biomass as promising replacement for coal , 2023, Arhiv za higijenu rada i toksikologiju.
[3] Safa M. Aldarabseh. Experimental investigation of the durability and stability of compressed jojoba cake briquettes , 2023, Biomass Conversion and Biorefinery.
[4] Y. Chhiti,et al. Waste-to-energy as a tool of circular economy: Prediction of higher heating value of biomass by artificial neural network (ANN) and multivariate linear regression (MLR). , 2022, Waste management.
[5] Deepak Chhabra,et al. Experimental investigations of electrical discharge micro-drilling for Mg-alloy and multi-response optimization using MOGA-ANN , 2022, CIRP Journal of Manufacturing Science and Technology.
[6] G. Kaur,et al. Estimation for Potential of Agricultural Biomass Sources as Projections of Bio-Briquettes in Indian Context , 2022, Sustainability.
[7] J. Jandačka,et al. Analyses of Pellets Produced from Spruce Sawdust, Spruce Bark, and Pine Cones in Different Proportions , 2022, Energies.
[8] Peter Tumutegyereize,et al. Biofuel characteristics of non-charred briquettes from dried fecal sludge blended with food market waste: Suggesting a waste-to-biofuel enterprise as a win–win strategy to solve energy and sanitation problems in slums settlements , 2021, Waste Management.
[9] F. Kemausuor,et al. Integrated bioethanol and briquette recovery from rice husk: a biorefinery analysis , 2021, Biomass Conversion and Biorefinery.
[10] Sanaullah,et al. Analysis of biofuel (briquette) production from forest biomass: a socioeconomic incentive towards deforestation , 2021, Biomass Conversion and Biorefinery.
[11] C. Vandecasteele,et al. The energy potential of agriculture, agroindustrial, livestock, and slaughterhouse biomass wastes through direct combustion and anaerobic digestion. The case of Colombia , 2020 .
[12] A. Greinert,et al. The Use of Plant Biomass Pellets for Energy Production by Combustion in Dedicated Furnaces , 2020 .
[13] S. Y. Kpalo,et al. Physical characterization of briquettes produced from paper pulp and Mesua ferrea mixtures , 2019, Biofuels.
[14] A. Seco,et al. Characterization of Biomass Briquettes from Spent Coffee Grounds and Xanthan Gum Using Low Pressure and Temperature , 2019, BioEnergy Research.
[15] Reza Maleki Delarestaghi,et al. Current status and future perspectives of solid waste management in Iran: a critical overview of Iranian metropolitan cities , 2019, Environmental Science and Pollution Research.
[16] J. I. Orisaleye,et al. Empirical model for prediction of density and water resistance of corn cob briquettes , 2019, International Journal of Renewable Energy Technology.
[17] N. Ayuni,et al. Proximate Analysis and Calorific Value of Pellets in Biosolid Combined with Wood Waste Biomass , 2018 .
[18] A. Phan,et al. Effects of operating parameters on maize COB briquette quality , 2018 .
[19] A. Olorunnisola,et al. Potential of Briquetting as a Waste-Management Option for Handling Market-Generated Vegetable Waste in Port Harcourt, Nigeria , 2018 .
[20] Imeh E. Onukak,et al. Production and Characterization of Biomass Briquettes from Tannery Solid Waste , 2017 .
[21] G. Zeng,et al. A comparative study of biomass pellet and biomass-sludge mixed pellet: Energy input and pellet properties , 2016 .
[22] O. Obi,et al. Characterization of fuel briquettes made from a blend of rice husk and palm oil mill sludge , 2016 .
[23] O. Obi. Evaluation of the physical properties of composite briquette of sawdust and palm kernel shell , 2015 .
[24] K. K. Sharma,et al. Biochemical evaluation of xylanases from various filamentous fungi and their application for the deinking of ozone treated newspaper pulp. , 2015, Carbohydrate polymers.
[25] Rukayya Ibrahim Muazu,et al. Effects of operating variables on durability of fuel briquettes from rice husks and corn cobs , 2015 .
[26] Kevin McDonnell,et al. Prediction of biomass pellet quality indices using near infrared spectroscopy , 2015 .
[27] Giuseppe Toscano,et al. Investigation on wood pellet quality and relationship between ash content and the most important chemical elements. , 2013 .
[28] Mohammad Yusri Hassan,et al. Optimal distributed renewable generation planning: A review of different approaches , 2013 .
[29] Kevin McDonnell,et al. Prediction of biomass gross calorific values using visible and near infrared spectroscopy , 2012 .
[30] C. Enweremadu,et al. The Effects of Some Processing Parameters on Physical and Densification Characteristics of Corncob Briquettes , 2012 .
[31] Michael Rosenthal,et al. Calorific value of selected wood species and wood products , 2012, European Journal of Wood and Wood Products.
[32] S. Suhartini,et al. Physical properties characterization of fuel briquette made from spent bleaching earth , 2011 .
[33] S. Nižetić,et al. Cardboard/sawdust briquettes as biomass fuel: Physical-mechanical and thermal characteristics. , 2016, Waste management.
[34] B. Subiyanto,et al. Characterization of Biomass Pellet Made from Solid Waste Oil Palm Industry , 2014 .
[35] A. Tamilvanan. Preparation of Biomass Briquettes using Various Agro- Residues and Waste Papers , 2013 .