Engineering Solutions for CO2 Conversion. Группа авторов

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      35 35 Haroun, Y., Raynal, L., and Legendre, D. (2012). Mass transfer and liquid hold‐up determination in structured packing by CFD. Chem. Eng. Sci. 75: 342–348.

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      38 38 Sun, H., Wu, C., Shen, B. et al. (2018). Progress in the development and application of CaO‐based adsorbents for CO2 capture – a review. Mater. Today Sustainability1–2: 1–27.

      39 39 Atsonios, K., Zeneli, M., Nikolopoulos, A. et al. (2015). Calcium looping process simulation based on an advanced thermodynamic model combined with CFD analysis. Fuel 153: 370.

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      41 41 Ryan, E.M., DeCroix, D., Breault, R. et al. (2013). Multi‐phase CFD modeling of solid sorbent carbon capture system. Powder Technol. 242: 117–134.

      42 42 Barelli, L., Bidini, G., and Gallorini, F. (2016). CO2 capture with solid sorbent: CFD modelling of an innovative reactor concept. Appl. Energy 162: 58–67.

      43 43 Sornumpol, R., Uraisakul, W., Kuchonthara, P. et al. (2017). CFD simulation of fuel reactor in chemical looping combustion. Energy Procedia 138: 979–984.

      44 44 Kim, M., Na, J., Park, S. et al. (2018). Modeling and validation of a pilot‐scale aqueous mineral carbonation reactor for carbon capture using computational fluid dynamics. Chem. Eng. Sci. 177: 301–312.

      45 45 Chen, Q., Rosner, F., Rao, A. et al. (2019). Simulation of elevated temperature solid sorbent CO2 capture for pre‐combustion applications using computational fluid dynamics. Appl. Energy 237: 314–325.

      46 46 Ghadirian, E., Abbasian, J., and Arastoopour, H. (2019). CFD simulation of gas and particle flow and a carbon capture process using a circulating fluidized bed (CFB) reacting loop. Powder Technol. 344: 27–35.

      47 47 Wang, S., Hu, B., Jin, C. et al. (2019). Dense discrete phase model simulations of CO2 capture process in a fluidized bed absorber with potassium‐based solid sorbent. Powder Technol. 345: 260–266.

      48 48 Wu, F., Argyle, M.D., Dellenback, P.A., and Fan, M. (2018). Progress in O2 separation for oxy‐fuel combustion–a promising way for cost‐effective CO2 capture: a review. Prog. Energy Combust. Sci. 67: 188–205.

      49 49 Wu, Y., Liu, D., Duan, L. et al. (2018). Three‐dimensional CFD simulation of oxy‐fuel combustion in a circulating fluidized bed with warm flue gas recycle. Fuel 216: 596–611.

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      52 52 Mayr, B., Prieler, R., Demuth, M. et al. (2015). CFD and experimental analysis of a 115 kW natural gas fired lab‐scale furnace under oxy‐fuel and air‐fuel conditions. Fuel 159: 864–875.

      53 53 Carrasco‐Maldonado, F., Bakken, J., Ditaranto, M. et al. (2017). Oxy‐fuel burner investigations for CO2 capture in cement plants. Energy Procedia 120: 120–125.

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      55 55 Fei, Y., Black, S., Szuhánszki, J. et al. (2015). Evaluation of the potential of retrofitting a coal power plant to oxi‐firing using CFD and process co‐simulation. Fuel Process. Technol. 131: 45–58.

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      57 57 Dezfully, M.G., Jafari, A., and Gharibshahi, R. (2015). CFD simulation of enhanced oil recovery using nanosilica/supercritical CO2. Adv. Mater. Res. 1104: 81–86.

      58 58 Gharibshahi, R., Jafari, A., and Ahmadi, H. (2019). CFD investigation of enhanced extra‐heavy oil recovery using metallic nanoparticles/steam injection in a micromodel with random pore distribution. J. Pet. Sci. Eng. 174: 374–383.

      59 59 Engelbrecht, N., Chiuta, S., Everson, R.C. et al. (2017). Experimentation and CFD modelling of a microchannel reactor for carbon dioxide methanation. Chem. Eng. J. 313: 847–857.

      60 60 Ohya, H., Fun, J., Kawamura, H. et al. (1997). Methanation of carbon dioxide by using membrane reactor integrated with water vapor permselective membrane and its analysis. J. Membr. Sci. 131: 237–247.

      61 61 Alarcón, A., Guilera, J., and Andreu, T. (2018). CO2 conversion to synthetic natural gas: reactor design over Ni–Ce/Al2O3

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