[1] Semelsberger, T.A., Borup, R.L., Greene, H.L. (2005). "Dimethyl ether (DME) as an alternative fuel." J. Power Sources, No. 156, pp. 497-511.
[2] Ng, K.L., Chadwick, D. and Toseland, B.A. (1999). "Kinetics and modelling of dimethyl ether synthesis from synthesis gas." Chem Eng Sci, No. 54, pp. 3587-3592.
[3] Sosna, M.Kh., Sokollinskii, Yu.A., Shovkoplyas, N.Yu. and Korolev, E.V. (2007). "Application of the thermodynamic method to developing the process of producing methanol and dimethyl ether from synthesis gas." Theor Found Chem Eng, No. 41, pp. 809-815.
[4] Wang, W., Wang, S., Ma, X. and Gong, J. (2011). "Recent advances in catalytic hydrogenation of carbon dioxide." Chem Soc Rev, No. 40, pp. 3703-3727.
[5] An, X., Zuo, Y.-Z., Zhang, Q., Wang, D.-z. and Wang, J.-F. (2008). "Dimethyl ether synthesis from CO2 hydrogenation on a CuO-ZnO-Al2O3-ZrO2/HZSM-5 bifunctional catalyst." Ind Eng Chem Res, No. 47, pp. 6547-6554.
[6] Bulushev, D.A., Ross, J.R.H., (2011), "Catalysis for conversion of biomass to fuels via pyrolysis and gasification." Rev Cataly Today., No. 171, pp. 1-13.
[7] Ereña, J., Garoña, R., Arandes, J., Aguayo, M. A.T. and Bilbao, J. (2005). "Direct synthesis of dimethyl ether from (H2+CO) and (H2+CO2) feeds. Effect of feed composition." Int J Chem React Eng, No. 3(1), p. A44.
[8] Ereña, J., Garoña, Arandes, J.M., Aguayo, A.T. and Bilbao, J. (2005). "Effect of operating conditions on the synthesis of dimethyl ether over a CuO-ZnO-Al2O3/NaHZSM-5 bifunctional catalyst." Catal Today, No. 107-108, pp. 467-473.
[9] Flores, J.H., Peixoto, D.P.B., Appel, L.G., de Avillez, R.R. and Pais da Silva, M.I. (2011). "The influence of different methanol synthesis catalysts on direct synthesis of DME from syngas." Catal Today, Vol. 172, pp. 218-225.
[10] Stiefel, M., Ahmad, R., Arnold, U. and Döring, M. (2011). "Direct synthesis of dimethyl ether from carbon-monoxide-rich synthesis gas: Influence of dehydration catalysts and operating conditions." Fuel Process Technol, No. 92, pp. 1466-1474.
[11] Ereña, J., Sierra, I., Olazar, M., Gayubo, A.G. and Aguayo, A.T. (2008). "Deactivation of a CuO-ZnO- Al2O3/γ-Al2O3 catalyst in the synthesis of dimethyl ether." Ind Eng Chem Res, No. 47, pp. 2238-2247.
[12] Sierra, I., Ereña, J., Aguayo, A.T., Olazar, M. and Bilbao, J. (2010). "Deactivation kinetics for direct dimethyl ether synthesis on a CuO-ZnO-Al2O3/γ-Al2O3 catalyst." Ind Eng Chem Res, No. 49, pp. 481-489.
[13] Sierra, I., Ereña, J., Aguayo, A.T., Arandes, J.M. and Bilbao, J. (2010). "Regeneration of CuO-ZnO-Al2O3/γ-Al2O3 catalyst in the direct synthesis of dimethyl ether." Appl Catal B: Environ, No. 94, pp. 108-116.
[14] Fazlollahnejad, M., Taghizadeh, M., Eliassi, A., Bakeri, G. (2009). "Experimental study and modeling of an adiabatic fixed-bed reactor for methanol dehydration to dimethyl ether." Chin J Chem Eng, No. 17, pp. 630-634.
[15] Farsi, M., Eslamlueyan, R., Jahanmiri, A. (2011). "Modeling, simulation and control of dimethyl ether synthesis in an industrial fixed-bed reactor." Chem Eng Process: Process Intens, No. 50, pp. 85-94.
[16] Farsi, M., Mazinani, S., Jahanmiri, A. (2011). "Steady state operability characteristics of an adiabatic fixed-bed reactor for methanol dehydration." Iran J Chem Chem Eng, No. 30, pp. 45-50.
[17] Farsi, M., Jahanmiri, A. (2011). "Enhancement of DME production in an optimized membrane isothermal fixed-bed reactor." Int J Chem React Eng, No. 9, p. A74.
[18] Farsi, M., Jahanmiri, A., Eslamloueyan, R. (2010). "Modeling and optimization of MeOH to DME in isothermal fixed-bed reactor." Int J Chem React Eng, No. 8, p. A79.
[19] Omata, K., Ozaki, T., Umegaki, T., Watanabe, Y., Nukui, N., Yamada, M. (2003). "Optimization of the temperature profile of a temperature gradient reactor for DME synthesis using simple genetic algorithm assisted by a neural network, high-quality transportation fuels." Energy Fuel, No. 17, pp. 836-841.
[20] Kordabadi, H., Jahanmiri, A. (2005). "Optimization of methanol synthesis reactor using genetic algorithms." Chem Eng J, No. 108, pp. 249-255.
[21] Hartig, F., Keil, F.J. (1993). "Large-scale spherical fixed bed reactors." Ind Eng Chem Res, No. 32, pp. 424-437.
[22] Viecco, G.A., Caram, H.S. (2002). "The spherical reverse flow reactor." Chem Eng Sci, No. 57, pp. 4005-4025.
[23] Rahimpour, M.R., Abbasloo, A., Sayyad Amin, J. (2008). "A novel radial-flow, spherical-bed reactor concept for methanol synthesis in the presence of catalyst deactivation." Chem Eng Technol, No. 31, pp.1615-1629.
[24] Farsi, M., Asemani, M., Rahimpour, M.R. (2014). "Mathematical modeling and optimization of multi-stage spherical reactor configurations for large scale dimethyl ether production." Fuel Process Technol, No. 126, pp. 207-214.
[25] Chen, Z., Zhang, H., Ying, W., Fang, D. (2010). "Study on direct alcohol/ether fuel synthesis process in bubble column slurry reactor." Front Chem Eng, No. 4, pp. 461-471.
[26] Liu, D., Hua, X., Fang, D. (2007). "Mathematical simulation and design of three-phase bubble column reactor for direct synthesis of dimethyl ether from syngas." J Nat Gas Chem, No. 16, pp.193-199.
[27] Maretto, C., Krishna, R. (1999). "Modelling of a bubble column slurry reactor for Fischer-Tropsch synthesis." Catal Today, No. 52, pp. 279-289.
[28] Maretto, C., and Krishna, R. (2001). "Design and optimisation of a multi-stage bubble column slurry reactor for Fischer-Tropsch synthesis." Catal Today, No. 66, pp. 241-248.
[29] Reilly, I.G., Scott, D.S., W Debruijn, T.J., Macintyre, D. (1994). "The role of gas phase momentum in determining gas holdup and hydrodynamic flow regimes in bubble column operations." Can J Chem Eng, No. 72, pp. 3-12.
[30] Krishna, R., De Swart, J.W.A., Ellenberger, J., Martina, G.B., Maretto, C. (1997). "Gas holdup in slurry bubble columns: Effect of column diameter and slurry concentrations." AIChE J, No. 43, pp. 311-316.
[31] Vermeer, D.J., Krishna, R., (1981). "Hydrodynamics and mass transfer in bubble columns operating in the churn-turbulent regime." Ind Eng Chem Des Deve, No. 20, pp. 475-482.
[32] Smith, D.N., Ruether, J.A. (1985). "Dispersed solid dynamics in a slurry bubble column." Chem Eng Sci, No.40, pp.741-753.
[33] De Swart, J.W.A., van Vliet, R.E., Krishna, R. (1996). "Size, structure and dynamics of “large” bubbles in a two-dimensional slurry bubble column." Chem Eng Sci, No. 51, pp.4619-4629.
[34] Field, R.W., Davidson, J.F. (1980) "Axial dispersion in bubble columns." T I Chem Eng, No. 58, pp. 228-235.
[35] Deckwer, W.-D., Schumpe, A. (1993). "Improved tools for bubble column reactor design and scale-up." Chem Eng Sci, No. 48, pp. 889-911.
[36] Wang, T., Wang, J. "Numerical simulations of gas-liquid mass transfer in bubble columns with a CFD-PBM coupled model." Chem Eng Sci, No. 62, pp. 7107-7118.
[37] Yagi, H., Ohno, Y., Inoue, N., Okuyama, K., Aoki, S. (2010). "Slurry phase reactor technology for DME direct synthesis." Int J Chem React Eng, No. 8, p. A109.
[38] Papari, S., Kazemeini, M., Fattahi, M. (2012). "Mathematical modeling of a slurry reactor for DME direct synthesis from syngas." J Nat Gas Chem, No. 21, pp. 148-157.
[39] Papari, S., Kazemeini, M., Fattahi, M. (2013). "Modelling-based optimisation of the direct synthesis of dimethyl ether from syngas in a commercial slurry reactor." Chinese J Chem Eng, No. 21, pp. 611-621.