參考文獻 |
[1] Total world energy consumption by source in 2011. Available online at
http://waitbutwhy.com/2014/03/energy-dummies.html
[2] The IEA’s Bioenergy Task40 report. Available online at
http://biomassmagazine.com/articles/9444/iea-task40-biomass-provides-10-percent-of-global-energy-use
[3] Zhang Y., Jin B., Zhong W. Experimental investigation on mixing and segregation behavior of biomass particle in fluidized bed. Chemical Engineering and Processing, 48 (2009a), 745-754.
[4] Prabir Basu. Biomass Gasification and Pyrolysis – Practical Design and Theory. Elsevier Inc. USA, 2010.
[5] D. Gidaspow. Multiphase flow and fluidization: continuum and kinetic theory description. Academic Press, San Diego, 1994.
[6] Y. Zhang, A.E. Ghaly and B. Li. Physical properties of rice residues as affected by variety and climatic and cultivation conditions in three continents. American Journal of Applied Sciences, 9 (11) (2012), 1757-1768.
[7] K.G. Mansaray and A.E. Ghaly. Physical and Thermochemical Properties of Rice Husk. Energy Sources, 19 (9) (1997), 989-1004
[8] Rice Knowledge Bank. Available online at http://www.knowledgebank.irri.org/
[9] A.V. Bridgwater, G.V.C. Peacocke. Fast pyrolysis processes for biomass.
Renewable and Sustainable Energy Reviews, 4 (2000), 1-73.
[2] A.V. Bridgwater. Review of fast pyrolysis of biomass and product upgrading. Biomass and Bioenergy, 38 (2012), 68-94.
[11] J. Ruud van Ommen and Naoko Ellis. Fluidization. JMBC/OSPT course Particle Technology, 2010.
[12] Y. K. Mohanty. Dynamic of promoted gas-solid fluidized bed using secondary fluidizing medium. Ph.D. Thesis, Department of Chemical Engineering, NIT, Rourkela, India, 2007.
[13] The information of the fluidized bed. Available online at
http://en.wikipedia.org/wiki/Fluidized_bed
[14] D. Kunii, O. Levenspiel. Fluidization Engineering. Second ed., Butterworth -Heinemann, London, 1991.
[15] Basu Paudel. Experimental study on fluidization of biomass, inert particles, and biomass/sand mixtures. Master Thesis, University of North Texas, Department of Mechanical and Energy Engineering, 2011.
[16] B.G.M. van Wachem, A.E. Almstedt. Methods for multiphase computational fluid dynamics. Chemical Engineering Journal, 96 (2003), 81-98.
[17] E. Salehi, J. Abedi, T. Harding. Bio-oil from sawdust: Effect of operating parameters on the yield and quality of pyrolysis products. Energy & Fuels, 25 (2011), 4145-4154.
[18] The IEA’s Bioenergy Task34 report - Pyrolysis. Available online at
http://www.pyne.co.uk/?_id=69
[19] ANSYS-INC. Theory′s Guide and User′s Guide: ANSYS FLUENT v.13.0.0.
[20] P.N. Rowe, A.W. Nienow, A.J. Agbim. The mechanism by which particle segregate in gas fluidized beds binary systems of near-spherical particles. Transactions of the Institute of Chemical Engineers, 50 (1972), 310–323.
[21] van Wachem, B.G.M., Schouten, J.C., van den Bleek, C.M., Krishna, R., Sinclair, J.L.. CFD modeling of gas-fluidized beds with a bimodal particle mixture. AIChE Journal, 47 (2001a), 1292-1302.
[22] C.K. Gupta, D. Sathiyamoorthy. Fluid Bed Technology in Materials Processing. CRC Press, Boca Laton, 2000.
[23] T.R. Rao, J.V. Ram Bheemarasetti. Minimum fluidization velocities of mixtures of biomass and sands. Energy, 26 (2001), 633-644.
[24] B. Paudel, Z.G. Feng. Prediction of minimum fluidization velocity for binary mixtures of biomass and inert particles. Powder Technology, 237 (2013), 134–140
[25] M. Hamzehei, H. Rahimzadeh. Experimental and numerical study of hydrodynamics with heat transfer in a gas-solid fluidized-bed reactor at different particle sizes. Industrial and Engineering Chemistry Research, 48 (6) (2009), 3177-3186.
[26] F. Taghipour, N. Ellis, C. Wong. Experimental and computational study of gas–solid fluidized bed hydrodynamics. Chemical Engineering Science, 60 (2005), 6857-6867.
[27] H. Zhong, J. Gao, C. Xu, X. Lan. CFD modeling the hydrodynamics of binary particle mixtures in bubbling fluidized beds - Effect of wall boundary condition. Powder Technology, 230 (2012), 232-240.
[28] Lun C.K.K., Savage F.B., Jeffrey D.J., Chepurnity N.. Kinetic theories for granular flow: Inelastic particles in Couette flow and slightly inelastic particles in general flow field, J. Fluid Mech., 140 (1984), 223-256.
[29] T.B. Anderson, R. Jackson. A fluid mechanical description of fluidized beds. Equations of motion. Industrial and Engineering Chemistry Fundamentals, 6 (1967), 527-539.
[30] Q. Xiong, S. C. Kong, A. Passalacqua. Development of a generalized numerical framework for simulating biomass fast pyrolysis in fluidized-bed reactors. Chemical Engineering Science, 99 (2013), 305-313.
[31] D. Schaeffer. Instability in the evolution equations describing incompressible granular flow, J. Diff. Equ., 66 (1987) 19-50.
[32] Granular Volcano Group. Available online at http://www.granular.org
[33] Y. Wen, Y. Yu. Mechanics of fluidization. Chem. Eng. Prog. Symp. Ser., 62 (1966), 100.
[34] S. Ergun. Fluid flow through packed columns. Chem. Eng. Prog., 48 (2) (1952), 89-94.
[35] D. Gidaspow, R. Bezburuah, J. Ding. Hydrodynamics of circulating fluidized beds, kinetic theory approach. In Fluidization VII, Proceedings of the 7th Engineering Foundation Conference on Fluidization, 1992, 75-82.
[36] M. Syamlal and T. J. O’Brien. Computer Simulation of Bubbles in a Fluidized Bed. AIChE Symp. Series, 85 (1989), 22-31.
[37] Lindsey Teaters. A computational study of the hydrodynamics of gas-solid fluidized beds. Master Thesis, Virginia Polytechnic Institute and State University, United States, 2012.
[38] M. Syamlal. The particle-particle drag term in a multiparticle model of fluidization. Technical report, National Technical Information Service, USA, 1987.
[39] M. Syamlal, W. Rogers, T.J. O′Brien, MFIX Documentation, Theory Guide. Technical Note, National Technical Information Service, Springfield, VA, 1993.
[40] T. I. Gombosi. Gaskinetic Theory. Cambridge University Press, New York, 1994
[41] Gunn, D. J.. Transfer of heat or mass to particles in fixed and fluidized beds. International Journal of Heat and Mass Transfer, 21 (1978), 467-476.
[42] A. Abderrahmane, A. Mohamed, N. Abdelkader, E. Mohammed, P. Bernard. Ranz & Marshall correlations limits on heat flow between a sphere and its surrounding gas at high temperature. Thermal Science, 17 (2013), 90-102.
[43] J. A. M. Kuipers, W. Prins and W. P. M. van Swaaij. Numerical calculation of wall-to-bed heat transfer coefficients in gas fluidized beds. AIChE Journal, 38 (1992), 1079-1091.
[44] Zongyan Zhou, Qinfu Hou and Aibing Yu. Particle Scale Simulation of Heat Transfer in Fluid Bed Reactors, Heat Transfer - Mathematical Modelling, Numerical Methods and Information Technology, Prof. Aziz Belmiloudi (Ed.), InTech, 2011.
[45] Z.Y. Zhou, A.B. Yu, P. Zulli. A new computational method for studying heat transfer in fluid bed reactors. Powder Technology, 197 (2010), 102-110.
[46] Y.Q. Feng, B.H. Xu, S.J. Zhang, A.B. Yu, P. Zulli. Discrete particle simulation of gas fluidization of particle mixtures. AICHE Journal, 50 (2004), 1713-1728.
[47] P.N. Rowe, A.W. Nienow. Particle mixing and segregation in gas fluidised beds. A review, Powder Technology, 15 (2) (1976), 141-147.
[48] A.C. Hoffmann, L.P.B.M. Janssen, J. Prins. Particle segregation in fluidized binary mixtures. Chemical Engineering Science, 48 (1993), 1583–1594.
[49] Gibilaro, L.G. and P.N. Rowe. Model for a segregating gas fluidized-bed. Chemical Engineering Science, 29(6), 1974.
[50] R. Bilbao et al., Model of mixing segregation for straw-sand mixtures in fluidized-beds. Powder Technology, 56(3), 1988.
[51] A.W. Nienow, N.S. Naimer. Continuous mixing of two particulate species of different density in a gas fluidised bed. Transactions, Institute of Chemical Engineers, 58 (1980), 181-186.
[52] Z. Chao, et al.. Multi-fluid modeling of density segregation in a dense binary fluidized bed. Particuology, 10 (1) (2012), 62-71.
[53] S. Chiba, T. Chiba, A.W. Nienow, H. Kobayashi. Minimum fluidization velocity, bed expansion and pressure drop profile of binary particle mixtures. Powder Technol., 22 (1979), 255-269.
[54] L. Huilin, H. Yurong, D. Gidaspow, Y. Lidan, Q. Yukun. Size segregation of binary mixture of solids in bubbling fluidized beds. Powder Technology, 134 (2003), 86-97.
[55] L. Huilin, Z. Yunhua, J. Ding, D. Gidaspow, L. Wei. Investigation of mixing/segregation of mixture particles in gas–solid fluidized beds. Chemical Engineering Science, 62 (2007), 301-317.
[56] M.J.V. Goldschmidt, J.A.M. Kuipers, W.P.M. van Swaaij. Hydrodynamic modeling of dense gas-fluidized bed using the kinetic theory of granular flow. Chemical Engineering Science, 56 (2001), 571-578.
[57] J. Gan, et al. Impact of the drag law formulation on the predicted binary-particle segregation patterns in a gas–solid fluidized bed. Powder Technology, 218 (2012), 69-75.
[58] D. Gera, M. Syamlal, T.J. O′Brien. Hydrodynamics of particle segregation in fluidized beds. International Journal of Multiphase Flow, 30 (2004), 419–428.
[59] M. P. Babu, K. Krishnaiah. Dynamics of jetsam layer in continuous segregation of binary heterogeneous particles in gas–solid fluidized bed. Powder Technology, 160 (2005), 114-120.
[60] A. Sahoo, R. K. Garg, G. K. Roy. Comparison of mixing index for binary and ternary mixtures of irregular particles in a gas-solid fluidized bed. Canadian Journal of Chemical Engineering, 89 (4) (2011), 825-832.
[61] M. Mostafazadeh, H. Rahimzadeh, M. Hamzei. Numerical analysis of the mixing process in a gas–solid fluidized bed reactor. Powder Technology, 239 (2013), 422-433.
[62] M.J.V. Goldschmidt, J.M. Link, S. Mellema, J.A.M. Kuipers. Digital image analysis measurements of bed expansion and segregation dynamics in dense gas fluidised beds, Powder Technology, 138 (2–3) (2003), 135-159.
[63] Y. Zhang, B. Jin, W. Zhong, B. Ren, R. Xiao. Characterization of fluidization and segregation of biomass particles by combining image processing and pressure fluctuations analysis. International Journal of Chemical Reactor Engineering 7 (2009b), 1-19.
[64] S. Cooper, C.J. Coronella. CFD simulations of particle mixing in a binary fluidized bed. Powder Technology, 151 (2005), 27–36.
[65] J. Leboreiro, G.G. Joseph, C.M. Hrenya, D.M. Snider, S.S. Banerjee, J.E. Galvin. The influence of binary drag laws on simulations of species segregation in gas-fluidized beds. Powder Technology, 184 (2008), 275-290.
[66] Sun Qiaoqun, Lu Huilin, Liu Wentie, He Yurong, Yang Lidan, Dimitri Gidaspow. Simulation and experiment of segregating/mixing of rice husk-sand mixture in a bubbling fluidized bed. Fuel, 84 (2005), 1739–1748.
[67] Shen, L., Xiao, J., Niklasson, F., Johnsson, F. Biomass mixing in a fluidized bed biomass gasifier for hydrogen production. Chemical Engineering Science, 62 (2007), 636–643.
[68] W. Bai, Norman K.G. Keller, Theodore J. Heindel, Rodney O. Fox. Numerical study of mixing and segregation in a biomass fluidized bed. Powder Technology, 237 (2013), 355-366.
[69] A. Sharma, S. Wang, V. Pareek, H. Yang, D. Zhang. CFD modeling of mixing/segregation behavior of biomass and biochar particles in a bubbling fluidized bed. Chemical Engineering Science, 106 (2014), 264-274.
[70] Deepali Patro. CFD simulation of mixing and segregation in a tapered fluidized bed. Bachelor dissertation, Department of Chemical Engineering, NIT, Rourkela, India, 2008.
[71] Xiaoquan Wang. Biomass fast pyrolysis in a fluidized bed - Product cleaning by in-situ filtration. Ph.D. Thesis, University of Twente, Netherlands, 2006.
[72] G.K. Roy and K. J. R. Sarma. Fluidized bed heat transfer. Chemical Processing & Engineering, February 1970.
[73] L.M. Armstrong, S. Gu, K.H. Luo. Study of wall-to-bed heat transfer in a bubbling fluidised bed using the kinetic theory of granular flow. International Journal of Heat and Mass Transfer, 53 (2010), 4949-4959.
[74] A. Schmidt and U. Renz. Numerical prediction of heat transfer in fluidized beds by a kinetic theory of granular flows. Int. J. Therm. Sci., 39 (2000), 870-885.
[75] H. Cui, P. Sauriol, J. Chaouki. High temperature fluidized bed reactor: measurements, hydrodynamics and simulation. Chemical Engineering Science, 58 (2003), 1071-1077.
[76] A.P. Collier, A.N. Hayhurst, J.L. Richardson, S.A. Scott. The heat transfer coefficient between a particle and a bed (packed or fluidised) of much larger particles. Chemical Engineering Science, 59 (2004), 4613-4620.
[77] J. L. M. A. Gomes , C. C. Pain , C. R. E. de Oliveira , A. J. H. Goddard and F. B. S. Oliveira. A numerical investigation of heat transfer mechanisms in gas-solid fluidized beds using the two-fluid granular temperature model. Heat Transfer Engineering, 28 (6) (2007), 576-597.
[78] Y. Behjat, S. Shahhosseini, S.H. Hashemabadi. CFD modeling of hydrodynamic and heat transfer in fluidized bed reactors. International Communications in Heat and Mass Transfer, 35 (3) (2008), 357-368.
[79] Q. F. Hou, Z. Y. Zhou, A. B. Yu. Computational study of heat transfer in bubbling fluidized beds with Geldart A powder. Seventh International Conference on CFD in the Minerals and Process Industries CSIRO, Melbourne, Australia, 9-11 December, 2009.
[80] Q. F. Hou, Z. Y. Zhou, A. B. Yu. Computational study of heat transfer in gas fluidization. Powders and Grains, AIP Conf. Proc., 1542 (2013), 1114-1117.
[81] J. Chang, S. Yang, K. Zhang. A particle-to-particle heat transfer model for dense gas–solid fluidized bed of binary mixture. Chemical engineering research and design, 89 (2011), 894-903.
[82] M. Hamzehei, H. Rahimzadeh, G. Ahmadi. Computational and experimental study of heat transfer and hydrodynamics in a 2D gas-solid fluidized bed reactor. Industrial and Engineering Chemistry Research, 49 (11) (2010), 5110-5121.
[83] Mahdi Hamzehei. Study of Heat Transfer and Hydrodynamics in the Fluidized Bed Reactors. Heat Transfer - Mathematical Modelling, Numerical Methods and Information Technology, Prof. Aziz Belmiloudi (Ed.), InTech, 2011.
[84] K. Papadikis, A.V. Bridgwater, S. Gu. CFD modelling of the fast pyrolysis of biomass in fluidised bed reactors, Part A: Eulerian computation of momentum transport in bubbling fluidised beds. Chemical Engineering Science, 63 (16) (2008), 4218-4227.
[85] K. Papadikis, S. Gu, A.V. Bridgwater. CFD modelling of the fast pyrolysis of biomass in fluidised bed reactors. Part B: heat, momentum and mass transport in bubbling fluidised beds, Chemical Engineering Science, 64 (5) (2009), 1036-1045.
[86] K. Papadikis, S.Gu, A. Fivga, A.V. Bridgwater. Numerical comparison of the drag models of granular flows applied to the fast pyrolysis of biomass. Energy & Fuels. 24 (2010), 2133-2145.
[87] K. Papadikis, S.Gu, A.V. Bridgwater. Geometrical optimization of a fast pyrolysis bubbling fluidized bed reactor using comutational fluid dynamics. Energy & Fuels, 24 (2010), 5634-5651.
[88] K. Papadikis, S.Gu, A.V. Bridgwater. Computational modelling of the impact of particle size to the heat transfer coefficient between biomass particles and a fluidised bed. Fuel Processing Technology, 91 (2010), 68-79.
[89] Hyeon Su Heo et al. Fast pyrolysis of rice husk under different reaction conditions. Journal of Industrial and Engineering Chemistry, 16 (2010), 27-31.
[90] J. Bruchmuller, B. G. M. van Wachem, S. Gu, K. H. Luo, R. C. Brown. Modeling the thermochemical degradation of biomass inside a fast pyrolysis fluidized bed reactor. AIChE Journal, 58 (2012), 3030-3042.
[91] A.A. Boateng, P.L. Mtui. CFD modeling of space-time evolution of fast pyrolysis products in a bench-scale fluidized-bed reactor. Applied Thermal Engineering, 33-34 (2012), 190-198.
[92] Q. Xiong, S. Aramideh, S. C. Kong. Modeling effects of operating conditions on biomass fast pyrolysis in bubbling fluidized bed reactors. Energy & Fuels, 27 (2013), 5948-5956.
[93] Jack T. Cornelissen, F. Taghipour, R. Escudié, N. Ellis, John R. Grace. CFD modelling of a liquid-solid fluidized bed. Chemical Engineering Science, 62 (2007), 6334-6348.
[94] The information of the Silicon dioxide. Available online at
http://en.wikipedia.org/wiki/Silicon_dioxide
[95] W.C. Yang. Handbook of Fluidization and Fluid-Particle Systems. Taylor & Francis Group, Siemens Westinghouse Power Corporation, Pittsburgh, Pennsylvania, U.S.A., 2003.
[96] The information of the Reynolds number. Available online at
http://en.wikipedia.org/wiki/Reynolds_number
[97] M. Rhodes. Introduction to particle technology. John Wiley & Sons: New York, 1998.
[98] P.C. Johnson, R. Jackson. Frictional-collisional constitutive relations for granular materials, with application to plane shearing. J. Fluid Mech., 176 (1987), 67-93.
[99] Suhas V. Patankar. Numerical heat transfer and fluid flow. Washington: Hemisphere Publishing Corporation, 1980.
[100] J. L.M.A. Gomes, C. C. Pain, J. Su. Numerical investigation of mixing and heat transfer in lab-scale circulating fluidised beds. 5th European Thermal-Sciences Conference, The Netherlands, 2008.
[101] K. Papadikis, S. Gu, A.V. Bridgwater. CFD modelling of the fast pyrolysis of biomass in fluidised bed reactors: modelling the impact of biomass shrinkage. Chemical Engineering Journal, 149 (1–3) (2009), 417-427. [102] M. Hamzehei, H. Rahimzadeh, G. Ahmadi. Studies of gas velocity and particles size effects on fluidized bed hydrodynamics with CFD modeling and experimental investigation. Journal of Mechanics, 26 (2010), 113-124.
[103] J. Bruchmuller, K. H. Luo, B. G. M. van Wachem. Tar formation variations during fluidised bed pyrolytic biomass conversion. Proc. Combust. Inst., 34 (2013), 2373-2381.
[104] P. Mellin, Q. Zhang, E. Kantarelis, W. Yang. An Eulere-Euler approach to modeling biomass fast pyrolysis in fluidized-bed reactors_Focusing on the gas phase. Applied Thermal Engineering, 58 (2013), 344-353.
[105] Zhang, Y., Jin, B., Zhong, W.. Fluidization, mixing and segregation of a biomass–sand mixture in a fluidized bed. International Journal of Chemical Reactor Engineering, 6 (2008), 1-29.
[106] D. Geldart. Types of Gas Fluidization. Powder Technology, 7 (1973), 285-292.
[107] J.H. Lienhard IV, J.H. Lienhard V. A Heat Transfer Textbook. Phlogiston Press, 2006.
[108] Theodore L. Bergman, Adrienne S. Lavine, Frank P. Incropera, David P. DeWitt. Fundamentals of Heat and Mass Transfer. John Wiley & Sons, Inc., USA, 7th Edition, 2011.
[109] Frank Kreith, Raj M. Manglik, Mark S.Bohn. Principles of Heat Transfer. Cengage Learning, Inc., USA, 7th Edition, 2011.
[110] The Engineering Toolbox. Available online at http://www.engineeringtoolbox.com/
[111] CFD Online Forum. Available online at http://www.cfd-online.com/Wiki/Fluent_FAQ
[112] Chemical Engineering Journal (IF 3.473). Available online at
http://www.sciencedirect.com/science/journal/13858947
[113] International Journal of Heat and Mass Transfer (IF 2.315). Available online at
http://www.sciencedirect.com/science/journal/00179310
[114] Journal of American Institute of Chemical Engineers (AIChE) (IF 2.493). Available online at http://onlinelibrary.wiley.com/journal/10.1002/(ISSN)1547-5905
[115] Journal of Analytical and Applied Pyrolysis (IF 2.560). Available online at
http://www.sciencedirect.com/science/journal/01652370
[116] Journal of Applied Mathematics and Computation (IF 1.349). Available online at
http://www.sciencedirect.com/science/journal/00963003
[117] Journal of Applied Thermal Engineering (IF 2.127). Available online at
http://www.sciencedirect.com/science/journal/13594311
[118] Journal of Biomass and Bioenergy (IF 2.975).Available online at
http://www.sciencedirect.com/science/journal/09619534/67
[119] Journal of Chemical Engineering Research and Design (IF 1.927). Available online at
http://www.sciencedirect.com/science/journal/02638762
[120] Journal of Chemical Engineering Science (IF 2.386). Available online at
http://www.sciencedirect.com/science/journal/00092509
[121] Journal of Energy & Fuels (IF 2.853). Available online at
http://pubs.acs.org/journal/enfuem
[122] Journal of Fuel (IF 3.357). Available online at
http://www.sciencedirect.com/science/journal/00162361
[123] Journal of Fuel Processing Technology (IF 2.816). Available online at
http://www.sciencedirect.com/science/journal/03783820
[124] Journal of Industrial & Engineering Chemistry Research (IF 2.206). Available online at
http://pubs.acs.org/journal/iecred
[125] Journal of International Communications in Heat and Mass Transfer (IF 2.208). Available online at http://www.sciencedirect.com/science/journal/07351933
[126] Journal of Powder Technology (IF 2.024). Available online at
http://www.sciencedirect.com/science/journal/00325910
|