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A Comparison Between Heterogeneous And Homogeneous Gas Flow Model In Slurry Bubble Column Reactor For Direct Synthesis Of Dme

Authors: Sadegh Papari; Kazemeini, Mohammad; Moslem Fattahi;

A Comparison Between Heterogeneous And Homogeneous Gas Flow Model In Slurry Bubble Column Reactor For Direct Synthesis Of Dme

Abstract

{"references": ["K. L. Ng, D. Chadwick, and B. A. Toseland, \"Kinetics and modelling of\ndimethyl ether synthesis from synthesis gas,\" Chem. Eng. Sci., vol. 54,\npp. 3587-3592, 1999.", "Z. Chen, H. Zhang, W. Ying, and D. Fang, \"Study on direct\nalcohol/ether fuel synthesis process in bubble column slurry reactor,\"\nFron. Chem. Eng. Chin., vol. 4, pp. 461-471, 2010.", "D. Liu, X. Hua, and D. Fang, \"Mathematical Simulation and Design of\nThree-Phase Bubble Column Reactor for Direct Synthesis of Dimethyl\nEther from Syngas,\" J. Nat. Gas Chem., vol. 16, pp. 193-199, 2007.", "C. Maretto, and R. Krishna, \"Modelling of a bubble column slurry\nreactor for Fischer-Tropsch synthesis,\" Catal. Today, vol. 52, pp. 279-\n289, 1999.", "C. Maretto, and R. Krishna, \"Design and optimisation of a multi-stage\nbubble column slurry reactor for Fischer-Tropsch synthesis,\" Catal.\nToday, vol. 66, pp. 241-248, 2001.", "I. G. Reilly, D. S. Scott, T. J. W Debruijn, and D. Macintyre, \"A role of\ngas phase momentum in determining gas holdup and hydrodynamic flow\nregimes in bubble column operations,\" Can. J. Chem. Eng., vol. 72, pp.\n3-12, 1994.", "R. Krishna, and J. W. A. de Swart, J. Ellenberger, G. B. Martina, and C.\nMaretto, \"Gas holdup in slurry bubble columns: effect of column\ndiameter and slurry concentrations,\" AIChE J., vol. 43, pp. 311-316,\n1997.", "D. J. Vermeer, and R. Krishna, \"Hydrodynamics and mass transfer in\nbubble columns operating in the churn-turbulent regime,\" Ind. Eng.\nChem. Process Des. Dev., vol., 20, pp. 475-482, 1981.", "D. N. Smith, and J. A. Ruether, \"Dispersed solid dynamics in a slurry\nbubble column,\" Chem. Eng. Sci., vol. 40, pp. 741-775, 1985.\n[10] J. W. A. De Swart, R. E. van Vliet, and R. Krishna, \"Size, structure and\ndynamics of \"large\" bubbles in a two-dimensional slurry bubble\ncolumn,\" Chem. Eng. Sci., vol. 51, pp. 4619-4629, 1996.\n[11] R. W. Field, and J. F. Davidson, \"Axial dispersion in bubble columns,\"\nTrans. Ins. Chem. Eng., vol. 58, pp. 228-235, 1980.\n[12] W.-D. Deckwer, A. Schumpe, \"Improved tools for bubble column\nreactor design and scale-up,\" Chem. Eng. Sci., vol. 48, pp. 889-911,\n1993.\n[13] T. Wang, and J. Wang, \"Numerical simulations of gas-liquid mass\ntransfer in bubble columns with a CFD-PBM coupled model,\" Chem.\nEng. Sci., vol. 62, pp. 7107-7118, 2007.\n[14] H. Yagi, Y. Ohno, N. Inoue, K. Okuyama, and S. Aoki, \"Slurry Phase\nReactor Technology for DME Direct Synthesis,\" Int. J. Chem. Reactor\nEng., vol. 8, pp. A109, 2010."]}

In the present study, a heterogeneous and homogeneous gas flow dispersion model for simulation and optimisation of a large-scale catalytic slurry reactor for the direct synthesis of dimethyl ether (DME) from syngas and CO2, using a churn-turbulent regime was developed. In the heterogeneous gas flow model the gas phase was distributed into two bubble phases: small and large, however in the homogeneous one, the gas phase was distributed into only one large bubble phase. The results indicated that the heterogeneous gas flow model was in more agreement with experimental pilot plant data than the homogeneous one.

Keywords

Heterogeneous gas flow, Dimethyl ether synthesis, Slurry bubble column, Homogeneous gas flow, Modelling

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This indicator reflects the "current" impact/attention (the "hype") of an article in the research community at large, based on the underlying citation network.
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