Theoretical and Experimental Study of Potato Shoot Gasification in Fluidized- and Fixed-Bed Gasifier
Subject Areas : Farm Structuresمجتبی جاویدی قراچه 1 , مهدی خجسته پور 2 , محمدعلی ابراهیمی نیک 3 , ون ازلینا ون اب کریم قانی 4
1 - دانشجوی دکتری، گروه مهندسی بیوسیستم، دانشگاه فردوسی مشهد، مشهد، ایران
2 - دانشیار، گروه مهندسی بیوسیستم، دانشگاه فردوسی مشهد، مشهد، ایران
3 - استادیار، گروه مهندسی بیوسیستم، دانشگاه فردوسی مشهد، مشهد، ایران
4 - دانشیار گروه مهندسی شیمی، دانشگاه پوترا مالزی، مالزی
Keywords: Modeling, updraft, fixed-bed gasifier, fluidized-bed gasifier,
Abstract :
A bench-scale updraft gasifier was used as a fluidized- and fixed-bed gasification unit in three modes (fluidized-bed at equivalence ratios (ER) =0.2 and 0.25, and a mode in fixed-bed). The experiments were done in five different temperatures (650, 700, 750, 800 and 850oC). To obtain the required data to develop a thermodynamic equilibrium model, the proximate and ultimate analysis were carried out on potato shoot as feedstock. Since the developed model is a temperature-based model, it gives different outcomes in different temperatures. The model gave a completely exact result to predict CH4 in fluidized-bed at ER=0.25. The average error for the difference between each produced gas in experiments and the model showed the best result of the model for CO with the error of just 0.7%. Regarding each experiment data difference with the model data, the model was more accurate to be used in fluidized-bed, especially at ER=0.25 than the other two modes. Moreover, the best performance of the model was obtained for CO, N2 and CO2, according to the average errors. Since the maximum amount of high heating value (HHV) and carbon conversion efficiency (CCE) was observed at higher temperatures, it can be contended that the model has better performance at higher temperatures.
Ahmed, T.Y., Ahmad, M.M., Yusup, S., Inayat, dA., & Khan, Z. (2012). Mathematical and computational approaches for design of biomass gasification for hydrogen production: A review. Renewable and Sustainable Energy Reviews, 16, 2304-2315.
Aloui, T., & Halouani, K. (2007). Analytical modeling of polarizations in a solid oxide fuel cell using biomass syngas product as fuel. Applied Thermal Engineering, 27, 731-737.
Arnavat, P. M. (2011). Performance modeling and validation of biomass gasifiers for trigeneration plant. Unpublished dissertation, Department of Mechanical Engineering, University of Rovirai Virgili, Spain.
Babu, B.V., & Sheth, N.P. (2006). Modeling and simulation of reduction zone of downdraft biomass gasifier: effect of char reactivity factor. Energy Conversion and Management, 47, 2602-2611.
Banapurmath, N.R., &Tewari, P.G. (2009). Comparative performance studies of a 4-stroke CI engine operated on dual fuel mode with producer gas and Honge Oil and its Methyl Ester (HOME) with and without carburetor. Renewable Energy, 34, 1009-1015.
Cao, Y., Wang, Y., Riley, J.T., & Pan, W.P. (2006). A novel biomass air gasification process for producing tar-free higher heating value fuel gas. Fuel Processing Technology, 87, 343-353.
CIP. (2015). World Potato Atlas. Retrieved from https://research.cip.cgiar.org/confluence/display/wpa/Iran.
Di Blasi, C. (2000). Dynamic behavior of stratified downdraft gasifiers. Chemical Engineering Science, 55, 2931-44.
Dokhani, Sh., Keramat, J. & Rofigari Haghighat, Sh. (2003). Changes in glycoalkaloids and alfasolanine in potatoes during storage and thermal process. Journal of Soil and Water Sciences, Science and Technology of Agriculture and Natural Resources, 7, 171-183(In Persian).
Doranehgard, M.H., Samadyar, H., Mesbah, M., Haratipour, M., & Samiezade, S. (2017). High-Purity Hydrogen Production with in Situ CO2 Capture Based on Biomass Gasification. Fuel, 202, 29–35.
FAO. (2011). Potato World. Retrieved from http://www.fao.org/potato-2008/en/world/.2008.
FAOSTAT. (2016). Food and Agriculture Organization of the United Nations (FAO). FAOSTAT Database. Retrieved from http://faostat.fao.org/beta/en/#data/QC.
Ghani, W.A.W.K., Moghadam, R.A., Salleh, M.A.M., & Tavasoli, A. (2012). Gasification performance of rice husk in fluidized bed reactor: a hydrogen-rich production. Journal of Energy and Environment, 4(1), 7-11.
Ghatrehsamani, S., Ebrahimi, R., NewazKazi, S., Badarudin Badry, A., & Sadeghinezhad, E. (2016). Optimization model of peach production relevant to input energies – Yield function in Chaharmahal va Bakhtiari Province, Iran. Energy, 99, 315-321.
Giltrap, D.L., McKibbin, R., & Barnes, G.R.G. (2003). A steady state model of gas-char reactions in a downdraft biomass gasifier. Solar Energy, 74, 85-91.
Hernández, J.J., Aranda-Almansa, G., & Bula, A. (2010). Gasification of biomass wastes in an entrained flow gasifier: effect of the particle size and the residence time. Fuel Processing Technology, 91, 681-692.
Jiang, L., Chen, Z., & Farouq Ali, S.M. (2017). Modelling of reverse combustion linking in underground coal gasification. Fuel, 207, 302-311.
Khajehpour, M. (1999). The Production of Industrial Crops (4thEd.). Isfahan: Jahad Daneshgahi.
Kirkils, A.F., & Verbong, G.P.J. (2011). Biomass gasification: Still promising? A 30-year global overview. Renewable and Sustainable Energy Reviews, 15, 471-481.
Lv, P.M., Xiong, Z.H., Chan, G.J., Wu, C.Z., Chen, Y., & Zhu, J.X. (2004). An experimental study on biomass air-steam gasification in a fluidized bed. Bioresource Technology, 95, 95-101.
Masmoudi, M.A., Sahraoui, M., Grioui, N., & Halouani, K. (2014). 2-D Modeling of thermo-kinetics coupled with heat and mass transfer in the reduction zone of a fixed bed downdraft biomass gasifier. Renewable Energy, 66, 288-298.
Midilli, A., Dogru, M., Howarth, C.R., & Ayhan, T. (2001). Hydrogen production from hazelnut shell by applying air-blown downdraft gasification technique. International Journal of Hydrogen Energy, 26, 29-37.
Monforti, F., Bodis, K., Scarlat, N., & Dallemond, J.F. (2013). The possible contribution of agricultural crop residues to renewable energy targets in Europe: A spatially explicit study. Renewable and Sustainable Energy Reviews, 19, 666–677.
Monteiro, E., Ismail, T.M., Ramos, A., El Salam, M.A., Brito, P.S.D., & Rouboa, A. (2017). Assessment of the Miscanthus Gasification in a Semi-Industrial Gasifier Using a CFD Model. Applied Thermal Engineering, 123, 448–457.
Mozafari, A., Farshchi Tabrizi, F., Farsi, M., & Seyed Mousavi, S.A. H. (2017). Thermodynamic modeling and optimization of thermolysis and air gasification of waste tire. Journal of Analytical and Applied Pyrolysis, 126, 415-422.
Mweetwaa, A.M., Huntera, D., Poea, R., Kim, C., Harich Ginzberg, I., Tokuhisa, J.G., & Veilleux, R. E. (2012). Steroidal glycoalkaloids in Solanumchacoense. Phytochemistry, 75, 32–40.
Pengmei, L., Zhenhong, Y., & Longlong, M. (2007). Hydrogen-rich gas production from biomass air and oxygen/steam gasification in a downdraft gasifier. Renewable Energy, 32, 2173-2185.
Plis, P., & Wilk, R.K. (2011). Theoretical and experimental investigation of biomass gasification process in a fixed bed gasifier. Energy, 36(6), 3838–3845.
Roy, P.C., Datta, A., & Chakraborty, N. (2013). An assessment of different biomass feedstocks in a downdraft gasifier for engine application. Fuel, 106, 864-868.
Sales, C.V.B., Maya, D.M.Y., Lora, E.E.S., Jaén, R.L., Reyes, A.M.M., Andrade, A.M.G.R.V., & Martínez, J.D. (2017). Experimental Study on Biomass (eucalyptus spp.) Gasification in a Two Stage Downdraft Reactor by Using Mixtures of Air, Saturated Steam and Oxygen as Gasifying Agents. Energy Conversion and Management, 145, 314–323.
Simone, M., Nicolella, C., & Tognotti, L. (2013). Numerical and experimental investigation of downdraft gasification of woody residue. Bioresource Technology, 133, 92-101.
Thunman, H., & Leckner, B. (2005). Influence of size and density of fuel on combustion in a packed bed. Processing Combustible Institute, 30, 2939-2946.
Vaezi, M., Passandideh-fard, M., Moghiman, M., & Charmchi, M. (2011). Gasification of heavy fuel oils: A thermochemical equilibrium approach. Fuel, 90, 878-885.
Xiao, R., Jin, B., Zhou, H., Zhong, Z., & Zhang, M. (2007). Air gasification of polypropylene plastic waste in fluidized bed gasifier. Energy Conversion and Management, 48, 778-786.
Xiao, R., Zhang, M., Xiaong, Y., Zhou, H., Duan, Y., Zhong, Z., Chen, X., Shen, L., & Huang, Y. (2007). Air blown partial gasification of coal in a pilot plant pressurized spout-fluid bed reactor. Fuel, 86, 1631-1640.
Xie, J., Zhong, W., Jin, B., Shao, Y., & Liu, H. (2012). Simulation on gasification of forestry residues in fluidized beds by Eulerian–Lagrangian approach. Bioresource Technology, 121, 36-46.
Xue, Q., Heindel, T.J., & Fox, R.O. (2011). A CFD model for biomass fast pyrolysis in fluidized-bed reactors. Chemical Engineering Science, 66, 2440-52.
Yan, L., Cao, Y., & He, B. (2018). On the kinetic modeling of biomass/coal char co-gasification with steam. Chemical Engineering Journal, 331, 435-442.
Zainal, Z.A., Ali, R., Lean, C.H., & Seetharamu, K.N. (2001). Prediction of the performance of a downdraft gasifier using equilibrium modeling for different biomass materials. Energy Conversion and Management, 42(12), 1499–1515.