[1]. Lee J. S. and Oyama S. T., “Oxidative coupling of methane to higher hydrocarbons”, Catalysis Reviews Science and Engineering, 30, 249-280, 1988.##
[2]. Amenomiya Y., Birss V. I., Goledzinowski M., Galuszka J. and Sanger A. R., “Conversion of methane by oxidative coupling,” Catalysis Reviews—Science and Engineering, 32, 163-227,1990.##
[3]. Wolf E. E., “Methane conversion by oxidative processes”, 1992##
[4]. Fox J. III M., “The different catalytic routes for methane valorization: an assessment of processes for liquid fuels,” Catalysis Reviews—Science and Engineering, 35, 169-212, 1993.##
[5]. Santamaria J. M., Eduardo E. M. and Eduardo E. W., “Reactor simulation studies of methane oxidative coupling on a sodium/nickel-titanium oxide (NiTiO3) catalyst,” Industrial & Engineering Chemistry Research, 30, 1157-1165, 1991.##
[6]. Hoebink J. H. B. J., Couwenberg P. M. and Marin G. B., “Fixed bed reactor design for gas phase chain reactions catalyzed by solids: the oxidative coupling of methane,” Chemical engineering science, 49, 5453-5463, 1994.##
[7]. Lu Y., Dixon A. G., Moser W. R. and Ma Y. H., “Analysis and optimization of cross-flow reactors with staged feed policies—isothermal operation with parallel-series, irreversible reaction systems,” Chemical engineering science, 52, 1349-1363, 1997.##
[8]. Lu Y., Dixon A. G., Moser W. R. and Ma Y. H., “Analysis and optimization of cross-flow reactors for oxidative coupling of methane,” Industrial & engineering chemistry research, 36, 559-567, 1997. ##
[9]. Santamaria J. M., Eduardo E. M. and Eduardo E. W., “Reactor simulation studies of methane oxidative coupling on a sodium/nickel-titanium oxide (NiTiO3) catalyst,” Industrial & Engineering Chemistry Research, 30, 1157-1165, 1991.##
[10]. Santamaria J., Menendez M., Pena J. A., and Barahona J. I., “Methane oxidative coupling in fixed bed catalytic reactors with a distributed oxygen feed. A simulation study,” Catalysis today, 13, 353-360, 1992.##
[11]. Atwood H. E. and Bennett C. O., “Kinetics of the Fischer-Tropsch reaction over iron,” Industrial & Engineering Chemistry Process Design and Development, 18, 163-170, 1979.##
[12]. Bub G., Baerns M., Büssemeier B. and Frohning C., “Prediction of the performance of catalytic fixed bed reactors for Fischer-Tropsch synthesis,” Chemical Engineering Science, 35, 348-355, 1980. ##
[13]. Jess A., Popp R. and Hedden K., “Fischer–Tropsch-synthesis with nitrogen-rich syngas: fundamentals and reactor design aspects,” Applied Catalysis A: General, 186, 321-342, 1999.##
[14]. Marvast M. A., Sohrabi M., Zarrinpashne S. and Baghmisheh G., “Fischer‐Tropsch Synthesis: Modeling and Performance Study for Fe‐HZSM5 Bifunctional Catalyst,” Chemical Engineering & Technology, 28, 78-86, 2005.##
[15]. Park N., Kim J. R., Yoo Y., Lee J. and Park M. J., “Modeling of a pilot-scale fixed-bed reactor for iron-based Fischer–Tropsch synthesis: Two dimensional approach for optimal tube diameter,” Fuel, 122, 229-235, 2014.##
[16]. Moazami N. , Wyszynski M. L. , Mahmoudi H. , Tsolakis A. , Zou Z. , Panahifar P. and Rahbar K., “Modeling of a fixed bed reactor for Fischer–Tropsch synthesis of simulated N2-rich syngas over Co/SiO2: hydrocarbon pro duction,” Fuel, 154, 140-151, 2015.##
[17]. Dittmeyer R., Höllein V. and Daub K., “Membrane reactors for hydrogenation and dehydrogenation processes based on supported palladium,” Journal of Molecular Catalysis A: Chemical, 173,135-84, 2001.##
[18]. Buxbaum R. E. and Kinney A. B., “Hydrogen transport through tubular membranes of palladium coated tantalum and Niobium,” Industrial & Engineering Chemistry Research, 35, 530-537, 1996.##
[19]. Stansch Z., Mleczko L. and Baerns M., “Comprehensive kinetics of oxidative coupling of methane over the La2O3/CaO catalyst,” Industrial & engineering chemistry research, 36, 2568-2579, 1997.##
[20]. Rahmati M., Mehdi M. and Bargah‐Soleimani M., “Rate equations for the Fischer‐Tropsch reaction on a promoted iron catalyst,” The Canadian Journal of Chemical Engineering, 79, 800-804, 2001.##
[21]. Tye C. T., Mohamed A. R. and Bhatia S., “Modeling of catalytic reactor for oxidative coupling of methane using La2O3/CaO catalyst,” Chemical Engineering Journal, 87, 49-59, 2002.##