Detailed comparison of physical fining methods in an industrial glass melting furnace using coupled CFD simulations
Tài liệu tham khảo
Sissa, 2013
Qiu, 2018, Numerical simulation and optimization of the melting process for the regenerative aluminum melting furnace, Appl. Therm. Eng., 145, 315, 10.1016/j.applthermaleng.2018.09.060
Trier, 1984
G. Lubitz, E. Beutin, J. Leimkühler, Oxy-Fuel Fired Furnace in Combination with Batch and Cullet Preheating, Amsterdam, 2000, pp. 69–78.
Kobayashi, 2008, Development of an advanced batch/cullet preheater for oxy-fuel fired glass furnaces, 137, 10.1002/9780470924402.ch14
Beerkens, 2009, Energy saving options for glass furnaces & recovery of heat from their flue gases and experiences with batch & cullet pre-heaters applied in the glass industry, 143, 10.1002/9780470529010.ch14
Dolianitis, 2016, Waste heat recovery at the glass industry with the intervention of batch and cullet preheating, Therm. Sci., 20, 79, 10.2298/TSCI151127079D
Conradt, 2019, Prospects and physical limits of processes and technologies in glass melting, J. Asian Ceram. Soc., 7, 377, 10.1080/21870764.2019.1656360
2018
Prieler, 2015, Numerical investigation of the steady flamelet approach under different combustion environments, Fuel, 140, 731, 10.1016/j.fuel.2014.10.006
Mayr, 2015, CFD and experimental analysis of a 115kW natural gas fired lab-scale furnace under oxy-fuel and air–fuel conditions, Fuel, 159, 864, 10.1016/j.fuel.2015.07.051
Kobayashi, 2000, 8
Laux, 2017, Advanced heat recovery for oxy-fuel fired glass furnaces with optimelt plus technology, 83, 10.1002/9781119417507.ch8
Gaber, 2018, An experimental study of a thermochemical regeneration waste heat recovery process using a reformer unit, Energy, 155, 381, 10.1016/j.energy.2018.04.154
Wachter, 2020, Experimental investigation of tri-reforming on a stationary, recuperative TCR-reformer applied to an oxy-fuel combustion of natural gas, using a Ni-catalyst, Energy, 212, 10.1016/j.energy.2020.118719
Pashchenko, 2022, Natural gas reforming in thermochemical waste-heat recuperation systems: A review, Energy, 251, 10.1016/j.energy.2022.123854
Li, 2019, Three-dimensional glass furnace model of combustion space and glass tank with electric boosting, Mater. Trans., 60, 1034, 10.2320/matertrans.M2019044
Ungan, 1986, Effect of air bubbling on circulation and heat transfer in a glass-melting tank, J. Am. Ceram. Soc., 69, 382, 10.1111/j.1151-2916.1986.tb04765.x
Curran, 1973, Mathematical model of an electric glass furnace: effects of glass color and resistivity, IEEE Trans. Ind. Appl., IA-9, 348, 10.1109/TIA.1973.349916
Mase, 1980, Mathematical model of glass tank furnace with batch melting process, J. Non-Crystall. Solids, 38–39, 807, 10.1016/0022-3093(80)90536-0
Carvalho, 1988, Three-dimensional modelling of an industrial glass furnace, J. Energy Inst., 61, 143
Ungan, 1987, Three-dimensional numerical modeling of circulation and heat transfer in a glass melting tank. Part 1: mathematical formulation, Glastech. Ber., 60, 71
Ungan, 1987, Three-dimensional numerical modeling of circulation and heat transfer in a glass melting tank. Part 2: Sample simulations, Glastech. Ber., 60, 115
Abbassi, 2008, Numerical simulation and experimental analysis of an industrial glass melting furnace, Appl. Therm. Eng., 28, 450, 10.1016/j.applthermaleng.2007.05.011
Ungan, 1986, Melting behaviour of continuously charged loose batch blankets in glass melting furnaces, Glastech. Ber., 59, 279
Schill, 2004, Use of computer flow dynamics in glass technology, J. Non-Crystall. Solids, 345–346, 771, 10.1016/j.jnoncrysol.2004.08.199
Chang, 2005, Eulerian approach for multiphase flow simulation in a glass melter, Appl. Therm. Eng., 25, 3083, 10.1016/j.applthermaleng.2005.03.014
Wang, 2012, Optimization of parameters for an aluminum melting furnace using the Taguchi approach, Appl. Therm. Eng., 33–34, 33, 10.1016/j.applthermaleng.2011.09.007
Wang, 2013, Burner effects on melting process of regenerative aluminum melting furnace, Trans. Nonferr. Met. Soc. China, 23, 3125, 10.1016/S1003-6326(13)62843-5
Chen, 2022, Effect of coherent jet burner on scrap melting in electric arc furnace, Appl. Therm. Eng., 212, 10.1016/j.applthermaleng.2022.118596
Ai, 2020, Numerical analysis of the influence of molten pool instability on the weld formation during the high speed fiber laser welding, Int. J. Heat Mass Transfer, 160, 10.1016/j.ijheatmasstransfer.2020.120103
Ai, 2022, The investigation of molten pool dynamic behaviors during the “infinity” shaped oscillating laser welding of aluminum alloy, Int. J. Therm. Sci., 173, 10.1016/j.ijthermalsci.2021.107350
Li, 2020, Simulation of glass furnace with increased production by increasing fuel supply and introducing electric boosting, Int. J. Appl. Glass Sci., 11, 170, 10.1111/ijag.13907
Raič, 2021, Validation of a coupled 3D CFD simulation model for an oxy-fuel cross-fired glass melting furnace with electric boosting, Appl. Therm. Eng., 195, 117, 10.1016/j.applthermaleng.2021.117166
Raič, 2022, CFD simulation aided glass quality and energy efficiency analysis of an oxy-fuel glass melting furnace with electric boosting, Energy Convers. Manag.: X, 15
Hottel, 1967
Hoke, 2000, Application of glass melt modeling for examining forced bubbling design, Ceramics - Silikáty, 44, 14
Xu, 2020, Numerical simulation and optimisation of bubbling on float glass furnace. Part 1: The bubbling influence on glass fluid flow, Glass Technol.: Eur. J. Glass Sci. Technol. A, 61, 77
Daurer, 2022, Comprehensive and numerically efficient CFD model for bubbling in an industrial glass tank, Chem. Eng. Res. Des., 186, 82, 10.1016/j.cherd.2022.07.044
Beerkens, 2012, Future energy-efficient and low-emissions glass melting processes, 15, 10.1002/9781118217450.ch2
Staněk, 1977
Crabtree, 1969, Chain bubbling in viscous liquids, Chem. Eng. Sci., 24, 1755, 10.1016/0009-2509(69)87019-3
Guillen, 2018, Numerical comparison of bubbling in a waste glass melter, Ann. Nucl. Energy, 113, 380, 10.1016/j.anucene.2017.11.044
Guillen, 2019, Sensitivity study of forced convection bubbling in a transparent viscous fluid as a proxy for molten borosilicate glass, Ann. Nucl. Energy, 125, 38, 10.1016/j.anucene.2018.10.046
Pchelyakov, 1973, Bubbling and fining molten glass in continuous tank furnaces, Glass Ceram., 30, 21, 10.1007/BF00677646
Lankhorst, 2010, Modeling the quality of glass melting processes, 11, 10.1002/9780470769843.ch2
Němec, 2006, Analysis of energetic performance of glass melting processes as a basis for advanced glass production, Glass Technol. - Eur. J. Glass Sci. Technol. A, 47, 68
Němec, 2008, Glass melting and its innovation potentials: The role of glass flow in the bubble-removal process, Ceramics - Silikáty, 52, 240
Němec, 2009, Glass melting and its innovation potentials: The potential role of glass flow in the sand-dissolution process, Ceramics - Silikáty, 53, 145
Polák, 2011, Glass melting and its innovation potentials: The combination of transversal and longitudinal circulations and its influence on space utilisation, J. Non-Crystall. Solids, 357, 3108, 10.1016/j.jnoncrysol.2011.04.020
Polák, 2012, Mathematical modelling of sand dissolution in a glass melting channel with controlled glass flow, J. Non-Crystall. Solids, 358, 1210, 10.1016/j.jnoncrysol.2012.02.021
Jebavá, 2015, Modelling of the controlled melt flow in a glass melting space — Its melting performance and heat losses, J. Non-Crystall. Solids, 430, 52, 10.1016/j.jnoncrysol.2015.08.039
Krause, 2002
Shih, 1995, A new k-epsilon eddy viscosity model for high reynolds number turbulent flows, Comput. & Fluids, 24, 227, 10.1016/0045-7930(94)00032-T
Mayr, 2018, Modelling of high temperature furnaces under air-fuel and oxygen enriched conditions, Appl. Therm. Eng., 136, 492, 10.1016/j.applthermaleng.2018.03.013
Yin, 2011, Chemistry and radiation in oxy-fuel combustion: A computational fluid dynamics modeling study, Fuel, 90, 2519, 10.1016/j.fuel.2011.03.023
Ansys, 2016
Peters, 1984, Laminar diffusion flamelet models in non-premixed turbulent combustion, Prog. Energy Combust. Sci., 10, 319, 10.1016/0360-1285(84)90114-X
Peters, 2000
Peeters, 1995
Prieler, 2014, Evaluation of a steady flamelet approach for use in oxy-fuel combustion, Fuel, 118, 55, 10.1016/j.fuel.2013.10.052
Mayr, 2015, The usability and limits of the steady flamelet approach in oxy-fuel combustions, Energy, 90, 1478, 10.1016/j.energy.2015.06.103
Prieler, 2018, Sensitivity analysis of skeletal reaction mechanisms for use in CFD simulation of oxygen enhanced combustion systems, J. Energy Inst., 91, 369, 10.1016/j.joei.2017.02.004
Raithby, 1990, A finite-volume method for predicting a radiant heat transfer in enclosures with participating media, J. Heat Transfer, 112, 415, 10.1115/1.2910394
Chui, 1993, Computation of radiant heat transfer on a nonorthogonal mesh using the finite-volume method, Numer. Heat Transfer B, 23, 269, 10.1080/10407799308914901
Bordbar, 2014, A line by line based weighted sum of gray gases model for inhomogeneous CO2–H2O mixture in oxy-fired combustion, Combust. Flame, 161, 2435, 10.1016/j.combustflame.2014.03.013
Bordbar, 2020, An extended weighted-sum-of-gray-gases model to account for all CO2 - H2O molar fraction ratios in thermal radiation, Int. Commun. Heat Mass Transfer, 110, 10.1016/j.icheatmasstransfer.2019.104400
Smith, 1982, Evaluation of coefficients for the weighted sum of gray gases model, J. Heat Transfer, 104, 602, 10.1115/1.3245174
McBride, 1993
Batchelor, 1967
Pye, 2005
Conradt, 1990, An easy-to-apply method to estimate the heat demand for melting technical silicate glasses, Glass Sci. Technol., 63K, 134
Conradt, 2003, The glass melting process-treated as a cyclic process of an imperfect heat exchanger, 35
Conradt, 2008, II.24 - The industrial glass-melting process, 282
IEC-60584-1, 2013
Němec, 1994, Analysis and modelling of glass melting, Ceramics - Silikáty, 45
Pavlovskii, 1992, Corrosion of refractories in lead-silicate glass melts, Steklo Keram., 8, 12
Min’ko, 2007, Effect of the glass composition on corrosion of zirconium-containing refractories in a glass-melting furnace (A review), Glass Ceram., 64, 335, 10.1007/s10717-007-0084-6
Díaz-Ibarra, 2013, Design of a day tank glass furnace using a transient model and steady-state computation fluid dynamics, Appl. Therm. Eng., 52, 555, 10.1016/j.applthermaleng.2012.11.018
Feng, 2008, Study of the float glass melting process: Combining fluid dynamics simulation and glass homogeneity inspection, J. Am. Ceram. Soc., 91, 3229, 10.1111/j.1551-2916.2008.02606.x
Feng, 2009, Effect of the flow pattern in a float glass furnace on glass quality: Calculations and experimental evaluation of on-site samples, J. Am. Ceram. Soc., 92, 3098, 10.1111/j.1551-2916.2009.03319.x
Mayr, 2017, Comparison between solid body and gas radiation in high temperature furnaces under different oxygen enrichments, Appl. Therm. Eng., 127, 679, 10.1016/j.applthermaleng.2017.08.054
Polák, 2010, Glass melting and its innovation potentials: The impact of the input and output geometries on the utilization of the melting space, Ceramics - Silikáty, 54, 212
Hrbek, 2017, Bubble removal and sand dissolution in an electrically heated glass melting channel with defined melt flow examined by mathematical modelling, J. Non-Crystall. Solids, 456, 101, 10.1016/j.jnoncrysol.2016.11.013
Hrbek, 2018, Energy distribution and melting efficiency in glass melting channel: Diagram of melt flow types and effect of melt input temperature, J. Non-Crystall. Solids, 482, 30, 10.1016/j.jnoncrysol.2017.12.009
Beerkens, 2008, Analysis of elementary process steps in industrial glass melting tanks - Some ideas on innovations in industrial glass melting, Ceramics - Silikáty, 52, 206
Jebavá, 2018, Role of the glass melt flow in container furnace examined by mathematical modelling, Ceramics - Silikáty, 62, 86
Jebavá, 2019, Energy distribution and melting efficiency in glass melting channel: Effect of heat losses, average melting temperature and melting kinetics, J. Non-Crystall. Solids, 521, 10.1016/j.jnoncrysol.2019.119478
Jebavá, 2021, Energy distribution and melting efficiency in glass melting channel: Effect of configuration of heating barriers and vertical energy distribution, J. Non-Crystall. Solids, 562, 10.1016/j.jnoncrysol.2021.120776
