[1]. Gou, Y., Hou, Z., Liu, H., Zhou, L., & Were, P. (2014). Numerical simulation of carbon dioxide injection for enhanced gas recovery (CO2-EGR) in Altmark natural gas field. Acta Geotechnica, 9(1), 49-58.##
[2]. Chattopadhyay, S., & Chattopadhyay, D. (2012). Mining industries and their sustainable management. In Fossil Energy: Selected Entries from the Encyclopedia of Sustainability Science and Technology, 443-473. New York, NY: Springer New York. ##
[3]. Khan, C., Amin, R., & Madden, G. (2013). Carbon dioxide injection for enhanced gas recovery and storage (reservoir simulation). Egyptian Journal of Petroleum, 22(2), 225-240. doi.org/10.1016/j.ejpe.2013.06.002. ##
[4]. Iogna, A., Guillet-Lhermite, J., Wood, C., & Deflandre, J. P. (2017, June). CO2 storage and enhanced gas recovery: Using extended black oil modelling to simulate CO2 injection on a North Sea depleted gas field. In SPE Europec featured at EAGE Conference and Exhibition? (p. D031S008R004). SPE. doi.org/10.2118/185859-MS. ##
[5]. Al-Shargabi, M., Davoodi, S., Wood, D. A., Rukavishnikov, V. S., & Minaev, K. M. (2022). Carbon dioxide applications for enhanced oil recovery assisted by nanoparticles: Recent developments. ACS omega, 7(12), 9984-9994. doi.org/10.1021/acsomega.1c07123. ##
[6]. Mohammed, N., Abbas, A. J., Enyi, G. C., Edem, D. E., & Suleiman, S. M. (2020). Enhanced gas recovery by nitrogen injection: The effects of injection velocity during natural gas displacement in consolidated rocks. Journal of Natural Gas Science and Engineering, 83, 103513. doi.org/10.1016/j.jngse.2020.103513. ##
[7]. Mansi, M., Almobarak, M., Lagat, C., & Xie, Q. (2023). Statistical analysis of controlling factors on enhanced gas recovery by CO2 injection in shale gas reservoirs. Energy & Fuels, 37(2), 965-976. https://doi.org/10.1021/acs.energyfuels.2c03216. ##
[8]. Elsharafi, M. O. (2018). Literature review of water alternation gas injection. Journal of Earth Energy Engineering, 7(2), 33-45. doi.org/10.25299/jeee.2018.vol7(2).2117. ##
[9]. Jessen, K., Tang, G. Q., & Kovscek, A. R. (2008). Laboratory and simulation investigation of enhanced coalbed methane recovery by gas injection. Transport in Porous Media, 73(2), 141-159. ##
[10]. Eames, I., Austin, M., & Wojcik, A. (2022). Injection of gaseous hydrogen into a natural gas pipeline. International Journal of Hydrogen Energy, 47(61), 25745-25754. doi.org/10.1016/j.ijhydene.2022.05.300. ##
[11]. Pan, Y., Qiao, W., Chi, D., Li, Z., & Shu, Y. (2024). Research of steam injection in-situ production technology to enhance unconventional oil and gas recovery: A review. Journal of Analytical and Applied Pyrolysis, 177, 106332. doi.org/10.1016/j.jaap.2023.106332. ##
[12]. Ma, H., Yang, Y., Zhang, Y., Li, Z., Zhang, K., Xue, Z., Zhan, J. and Chen, Z., (2022). Optimized schemes of enhanced shale gas recovery by CO2-N2 mixtures associated with CO2 sequestration. Energy Conversion and Management, p.116062. ##
[13]. Kühn, M., Görke, U. J., Birkholzer, J. T., & Kolditz, O. (2012). The CLEAN project in the context of CO2 storage and enhanced gas recovery. Environmental Earth Sciences, 67(2), 307-310. ##
[14]. Yang, Q., Huang, L., Chen, Q., Feng, X., Xu, Z., Tian, B., Ning, Z. and Liu, B., (2025). Molecular insights into CO2 sequestration and enhanced gas recovery in water-bearing shale nanocomposites. Separation and Purification Technology, 355, p.129618. doi.org/10.1016/j.seppur.2024.129618. ##
[15]. Wang, W., Wen, J., Wang, C., Gomari, S.R., Xu, X., Zheng, S., Su, Y., Li, L., Hao, Y. and Li, D., 2023. Current status and development trends of CO2 storage with enhanced natural gas recovery (CS-EGR). Fuel, 349, p.128555. doi.org/10.1016/j.fuel.2023.128555. ##
[16]. Liu, S.Y., Ren, B., Li, H.Y., Yang, Y.Z., Wang, Z.Q., Wang, B., Xu, J.C. and Agarwal, R., 2022. CO2 storage with enhanced gas recovery (CSEGR): A review of experimental and numerical studies. Petroleum Science, 19(2), pp.594-607. doi.org/10.1016/j.petsci.2021.12.009. ##
[17]. Jikich, S. A., Smith, D. H., Sams, W. N., & Bromhal, G. S. (2003, September). Enhanced Gas Recovery(EGR) with carbon dioxide sequestration: A simulation study of effects of injection strategy and operational parameters. In SPE eastern regional meeting (pp. SPE-84813). SPE. doi.org/10.2118/84813-MS. ##
[18]. Oldenburg, C. M., Stevens, S. H., & Benson, S. M. (2004). Economic feasibility of carbon sequestration with enhanced gas recovery (CSEGR). Energy, 29(9-10), 1413-1422. doi.org/10.1016/j.energy.2004.03.075.
[19]. Kalra, S., & Wu, X. (2014, April). CO2 injection for enhanced gas recovery. In SPE Western Regional Meeting (pp. SPE-169578). SPE. doi.org/10.2118/169578-MS. ##
[20]. Stevenson, M. D., Pinczewski, W. V., & Downey, R. A. (1993, June). Economic evaluation of nitrogen injection for coalseam gas recovery. In SPE Unconventional Resources Conference/Gas Technology Symposium (pp. SPE-26199). SPE. doi.org/10.2118/26199-MS. ##
[21]. Hasan, M., Eliebid, M., Mahmoud, M., Elkatatny, S., & Shawabkeh, R. (2017, April). Enhanced gas recovery (EGR) methods and production enhancement techniques for shale & tight gas reservoirs. In SPE Kingdom of Saudi Arabia Annual Technical Symposium and Exhibition (p. D043S035R002). SPE. doi.org/10.2118/188090-MS. ##
[22]. Zangeneh, H., Jamshidi, S., & Soltanieh, M. (2013). Coupled optimization of enhanced gas recovery and carbon dioxide sequestration in natural gas reservoirs: Case study in a real gas field in the south of Iran. International Journal of Greenhouse Gas Control, 17, 515-522. doi.org/10.1016/j.ijggc.2013.06.007. ##
[23]. Kühn, M., Förster, A., Großmann, J., Lillie, J., Pilz, P., Reinicke, K.M., Schäfer, D., Tesmer, M. and Partners, C.L.E.A.N., 2013. The Altmark natural gas field is prepared for the enhanced gas recovery pilot test with CO2. Energy Procedia, 37, pp.6777-6785. doi.org/10.1016/j.egypro.2013.06.611. ##
[24]. Hamza, A., Hussein, I. A., Al-Marri, M. J., Mahmoud, M., Shawabkeh, R., & Aparicio, S. (2021). CO2 enhanced gas recovery and sequestration in depleted gas reservoirs: A review. Journal of Petroleum Science and Engineering, 196, 107685. doi.org/10.1016/j.petrol.2020.107685. ##
[25]. Zanganeh, H.; Jamshidi, S.; & Soltaniyeh, M. (2015). Simultaneous optimization of gas enhanced recovery and carbon dioxide storage in natural gas reservoirs. Petroleum Research, 25(82), 191–200, doi: 10.22078/pr.2015.527. (in Persian). ##
[26]. Kumar, N., Sampaio, M. A., Ojha, K., Hoteit, H., & Mandal, A. (2022). Fundamental aspects, mechanisms and emerging possibilities of CO2 miscible flooding in enhanced oil recovery: A review. Fuel, 330, 125633. doi.org/10.1016/j.fuel.2022.125633. ##
[27]. Schepers, K., Oudinot, A., & Ripepi, N. (2010, November). Enhanced gas recovery and CO2 storage in coal bed methane reservoirs: Optimized injected gas composition for mature basins of various coal rank. In SPE international conference on CO2 capture, storage, and utilization (pp. SPE-139723). SPE. ##
[28]. Mamora, D. D., & Seo, J. G. (2002, September). Enhanced gas recovery by carbon dioxide sequestration in depleted gas reservoirs. In SPE Annual Technical Conference and Exhibition? (pp. SPE-77347). SPE. doi.org/10.2118/77347-MS. ##
[29]. Mamora, D. D., & Seo, J. G. (2002, September). Enhanced gas recovery by carbon dioxide sequestration in depleted gas reservoirs. In SPE Annual Technical Conference and Exhibition? (pp. SPE-77347). SPE. doi.org/10.2118/77347-MS. ##
[30]. Mahmoud, M., Hussein, I., Carchini, G., Shawabkeh, R., Eliebid, M., & Al-Marri, M. J. (2019). Effect of rock mineralogy on Hot-CO2 injection for enhanced gas recovery. Journal of Natural Gas Science and Engineering, 72, 103030. doi.org/10.1016/j.jngse.2019.103030. ##
[31]. Liang, B., Chen, C., Jia, C., Wang, C., Wang, X., Zha, Y., Wang, R., Meng, Z. and Wang, H., 2024. Carbon capture, utilization and storage (CCUS) in oil and gas reservoirs in China: Status, opportunities and challenges. Fuel, 375, p.132353. doi.org/10.1016/j.fuel.2024.132353. ##
[32]. Vesovic, V., Wakeham, W. A., Olchowy, G. A., Sengers, J. V., Watson, J. T. R., & Millat, J. (1990). The transport properties of carbon dioxide. Journal of physical and chemical reference data, 19(3), 763-808. ##
[33]. Aimoli, C. G., Maginn, E. J., & Abreu, C. R. (2014). Thermodynamic properties of supercritical mixtures of carbon dioxide and methane: a molecular simulation study. Journal of Chemical & Engineering Data, 59(10), 3041-3054. ##
[34]. Akpasi, S. O., & Isa, Y. M. (2022). Review of carbon capture and methane production from carbon dioxide. Atmosphere, 13(12), 1958. doi.org/10.3390/atmos13121958. ##
[35]. Masoumeh Rudgar A. S. P. R. (2013). Storing carbon dioxide in oil reservoirs to increase recovery, presented at the The first specialized oil conference and exhibition, . [Online]. Available: https://civilica.com/doc/215542. ##
[36]. Bou-Hamdan, K. F., Sufyan, F., & Hashim Abbas, A. (2025). Carbon capture, utilization, and storage in the MENA region: a regional review of projects and challenges. Arabian Journal for Science and Engineering, 50(7), 4529-4549. ##
[37]. Elham Bakhshi Pour, A. H. K., Ansari A. H. (2016). Using modern carbon dioxide gas injection technology to increase recovery in oil reservoirs, presented at the The Second National Conference on Geology and Mineral Exploration, [Online]. Available:
https://civilica.com/doc/538261. ##
[38]. Mohammad Panahi, S. Z., Movahed A. (2017). Investigating carbon dioxide gas injection to increase oil reservoir recovery, presented at the The First Annual Conference of Iranian Chemistry and Chemical Engineering, [Online]. Available: https://civilica.com/doc/695848. ##
[39]. Aref Hashemi Fatah, A. H. (2011). Investigation and evaluation of carbon dioxide injection to increase oil reservoir recovery, presented at the The Third National Conference on Modern Research in Chemistry and Chemical Engineering, [Online]. Available: https://civilica.com/doc/130299. ##
[40]. Sahebdelfar, S., & Ravanchi, M. T. (2015). Carbon dioxide utilization for methane production: A thermodynamic analysis. Journal of Petroleum Science and Engineering, 134, 14-22. https://doi.org/10.1016/j.petrol.2015.07.015. ##
[41]. Borgnakke, C., & Sonntag, R. E. (2020). Fundamentals of thermodynamics. John Wiley & Sons. ##
[42]. Silberberg, M. S., & Amateis, P. (2006). Chemistry: The molecular nature of matter and change (Vol. 4). New York: McGraw-Hill. ##
[43]. Oldenburg, C. M., & Benson, S. M. (2002, February). CO2 injection for enhanced gas production and carbon sequestration. In SPE International Oil Conference and Exhibition in Mexico (pp. SPE-74367). SPE. doi.org/10.2118/74367-MS. ##
[44]. Omar, A. A., Addassi, M., Hoteit, H., & Vahrenkamp, V. (2021, March). A new enhanced gas recovery scheme using carbonated water and supercritical CO 2. In Proceedings of the 15th Greenhouse Gas Control Technologies Conference (pp. 15-18). ##
[45]. Oldenburg, C. M., & Benson, S. M. (2001). Carbon sequestration with enhanced gas recovery: identifying candidate sites for pilot study. ##
[46]. Sun, Y. H., Zhang, G. B., Carroll, J. J., Li, S. L., Jiang, S. H., & Guo, W. (2018). Experimental investigation into gas recovery from CH4-C2H6-C3H8 hydrates by CO2 replacement. Applied Energy, 229, 625-636. doi.org/10.1016/j.apenergy.2018.08.023. ##
[47]. Wang, X., Alvarado, V., Swoboda-Colberg, N., & Kaszuba, J. P. (2013). Reactivity of dolomite in water-saturated supercritical carbon dioxide: Significance for carbon capture and storage and for enhanced oil and gas recovery. Energy Conversion and Management, 65, 564-573. doi.org/10.1016/j.enconman.2012.07.024. ##
[48]. Eliebid, M., Mahmoud, M., Shawabkeh, R., Elkatatny, S., & Hussein, I. A. (2018). Effect of CO2 adsorption on enhanced natural gas recovery and sequestration in carbonate reservoirs. Journal of Natural Gas Science and Engineering, 55, 575-584. doi.org/10.1016/j.jngse.2017.04.019. ##
[49]. Zhang, Y., Liu, S., Song, Y., Zhao, J., Tang, L., Xing, W., Jian, W., Liu, Z. and Zhan, Y., (2014). Experimental investigation of CO2-CH4 displacement and dispersion in sand pack for enhanced gas recovery. Energy Procedia, 61, (393-397). doi.org/10.1016/j.egypro.2014.11.1133. ##
[50]. Hughes, T. J., Honari, A., Graham, B. F., Chauhan, A. S., Johns, M. L., & May, E. F. (2012). CO2 sequestration for enhanced gas recovery: New measurements of supercritical CO2–CH4 dispersion in porous media and a review of recent research. International Journal of Greenhouse Gas Control, 9, 457-468. doi.org/10.1016/j.ijggc.2012.05.011. ##
[51]. Sun, Y., Du, Z., Sun, L., & Pan, Y. (2017). Phase behavior of SCCO2 sequestration and enhanced natural gas recovery. Journal of Petroleum Exploration and Production Technology, 7(4), 1085-1093. ##
[52]. Abba, M. K., Abbas, A. J., Nasr, G. G., Al-Otaibi, A., Burby, M., Saidu, B., & Suleiman, S. M. (2019). Solubility trapping as a potential secondary mechanism for CO2 sequestration during enhanced gas recovery by CO2 injection in conventional natural gas reservoirs: An experimental approach. Journal of Natural Gas Science and Engineering, 71, 103002. doi.org/10.1016/j.jngse.2019.103002. ##
[53]. Pooladi-Darvish, M., Hong, H., Theys, S., Stocker, R., Bachu, S., & Dashtgard, S. (2008, September). CO2 injection for enhanced gas recovery and geological storage of CO2 in the Long Coulee Glauconite F Pool, Alberta. In SPE Annual Technical Conference and Exhibition? (pp. SPE-115789). SPE. doi.org/10.2118/115789-MS. ##
[54]. Ma, X., He, D., Wei, Y., Guo, J., & Jia, C. (2023). Enhanced gas recovery: Theory, technology, and prospects. Natural Gas Industry B, 10(4), 393-405. ##
[55]. Liu, S., Zhang, Y., Xing, W., Jian, W., Liu, Z., Li, T., & Song, Y. (2015). Laboratory experiment of CO2–CH4 displacement and dispersion in sandpacks in enhanced gas recovery. Journal of Natural Gas Science and Engineering, 26, 1585-1594. doi.org/10.1016/j.jngse.2015.04.021. ##
[56]. Carchini, G., Hussein, I., Al-Marri, M. J., Shawabkeh, R., Mahmoud, M., & Aparicio, S. (2020). A theoretical study of gas adsorption on calcite for CO2 enhanced natural gas recovery. Applied Surface Science, 504, 144575. doi.org/10.1016/j.apsusc.2019.144575. ##
[57]. Carchini, G., Al-Marri, M. J., Hussein, I. A., & Aparicio, S. (2020). Ab initio molecular dynamics investigation of CH4/CO2 adsorption on calcite: Improving the enhanced gas recovery process. ACS omega, 5(46), 30226-30236. doi.org/10.1021/acsomega.0c04694. ##
[58]. Huang, L., Ning, Z., Wang, Q., Zhang, W., Cheng, Z., Wu, X., & Qin, H. (2018). Effect of organic type andmoisture on CO2/CH4 competitive adsorption in kerogen with implications for CO2 sequestration and enhanced CH4 recovery. Applied Energy, 210, 28-43. doi.org/10.1016/j.apenergy.2017.10.122. ##
[59]. Abba, M. K., Abbas, A. J., & Nasr, G. G. (2017). Enhanced gas recovery by CO2 injection and sequestration: effect of connate water salinity on displacement efficiency. In Abu Dhabi International Petroleum Exhibition and Conference (p. D021S039R005). SPE. doi.org/10.2118/188930-MS. ##
[60]. Abba, M. K., Al-Othaibi, A., Abbas, A. J., Nasr, G. G., & Mukhtar, A. (2018). Experimental investigation on the impact of connate water salinity on dispersion coefficient in consolidated rocks cores during Enhanced Gas Recovery by CO2 injection. Journal of Natural Gas Science and Engineering, 60, 190-201. doi.org/10.1016/j.jngse.2018.10.007. ##
[61]. Al-Abri, A., Sidiq, H., & Amin, R. (2009). Enhanced natural gas and condensate recovery by injection of pure SCCO2, pure CH4 and their mixtures: experimental investigation. In SPE Annual Technical Conference and Exhibition? (pp. SPE-124145). SPE. doi.org/10.2118/124145-MS. ##
[62]. Dakal, T. C., Dhakar, R., Bhushan, R., & Kumar, A. (2025). Applications of Nanotechnology and Nanomaterials in Gas Industry. Bio‐Nanomaterials in Environmental Remediation: Industrial Applications, 173-190. doi.org/10.1002/9783527848546.ch7. ##
[63]. Clemens, T., & Wit, K. (2002, September). CO2 enhanced gas recovery studied for an example gas reservoir. In SPE Annual Technical Conference and Exhibition? (pp. SPE-77348). SPE. doi.org/10.2118/77348-MS. ##
[64]. Stevens, S. H., Spector, D., & Riemer, P. (1998). Enhanced coalbed methane recovery using CO2 injection: worldwide resource and CO2 sequestration potential. In SPE International Oil and Gas Conference and Exhibition in China (pp. SPE-48881). ##
[65]. Bai, M., Song, K., Gou, J., Zhao, Y., & Zhao, J. (2014). Well integrity evaluation during CO2 storage and enhanced gas recovery. Sch J Eng Technol, 2(1), 1-8. ISSN 2321-435X (Online). ##
[66]. Wang, F., Liu, Y., Hu, C., Wang, Y., Shen, A., & Liang, S. (2018). Experimental study on feasibility of enhanced gas recovery through CO2 flooding in tight sandstone gas reservoirs. Processes, 6(11), 214. doi.org/10.3390/pr6110214. ##
[67]. Secklehner, S., Arzmüller, G., & Clemens, T. (2010, January). Tight ultra-deep Gas Field production optimisation–Development optimisation and CO2 enhanced Gas recovery potential of the Schoenkirchen Uebertief Gas Field, Austria. In SPE Deep Gas Conference and Exhibition (pp. SPE-130154). SPE. doi.org/10.2118/130154-MS. ##
[68]. Kühn, M., Tesmer, M., Pilz, P., Meyer, R., Reinicke, K., Förster, A., Kolditz, O., Schäfer, D. and CLEAN Partners, (2012). CLEAN: project overview on CO2 large-scale enhanced gas recovery in the Altmark natural gas field (Germany). Environmental Earth Sciences, 67(2), pp.311-321. ##
[69]. Ganzer, L., Reitenbach, V., Pudlo, D., Albrecht, D., Singhe, A.T., Awemo, K.N., Wienand, J. and Gaupp, R., 2014. Experimental and numerical investigations on CO2 injection and enhanced gas recovery effects in Altmark gas field (Central Germany). Acta Geotechnica, 9(1), pp.39-47. ##
[70]. Van der Meer, L. G. H., Kreft, E., Geel, C. R., d’Hoore, D., & Hartman, J. (2006, June). Enhanced gas recovery testing in the K12-B reservoir by CO2 injection, a reservoir engineering study. In 8th International Conference on Greenhouse Gas Control Technologies (pp. 19-22). ##
[71]. Gao, X., Yang, S., Wang, B., Zhang, Y., Hu, J., Wang, M., Shen, B., Zhao, E. and Rui, Z., 2025. Wellbore-reservoir and multiphysics coupling model for liquid CO2 cyclic injection in a CCUS-EGR framework. Journal of Hydrology, 658, p.133188. doi.org/10.1016/j.jhydrol.2025.133188. ##
[72]. Ezekiel, J., Ebigbo, A., Adams, B. M., & Saar, M. O. (2020). Combining natural gas recovery and CO2-based geothermal energy extraction for electric power generation. Applied Energy, 269, 115012. doi.org/10.1016/j.apenergy.2020.115012. ##
[73]. Kühn, M., Förster, A., Großmann, J., Meyer, R., Reinicke, K., Schäfer, D., & Wendel, H. (2011). CLEAN: preparing for a CO2-based enhanced gas recovery in a depleted gas field in Germany. Energy Procedia, 4, 5520-5526. doi.org/10.1016/j.egypro.2011.02.538. ##
[74]. Bai, M., Zhang, Z., & Fu, X. (2016). A review on well integrity issues for CO2 geological storage and enhanced gas recovery. Renewable and Sustainable Energy Reviews, 59, 920-926. doi.org/10.1016/j.rser.2016.01.043. ##
[75]. AL-khulaidi, G., Sun, Y., Alareqi, A. G., Ibrahim, A. W., Magaji, A., & Zhang, X. (2024). Review on carbon capture, utilization, and storage for enhancing gas recovery. Energy & Fuels, 38(10), 8355-8384. ##
[76]. M. Sayyafzadeh and A. Keshavarz, Optimisation of gas mixture injection for enhanced coalbed methane recovery using a parallel genetic algorithm, Journal of Natural Gas Science and Engineering, Vol. 33, pp. 942-953, 2016. ##
[77]. S. Alafnan, M. Aljawad, F. Alismail, and A. Almajed, Enhanced recovery from gas condensate reservoirs through renewable energy sources, Energy & Fuels, Vol. 33, No. 10, pp. 10115-10122, 2019. ##
[78]. G. Ping, J. Shasha, and P. Caizhen, Technologies and countermeasures for gas recovery enhancement, Natural Gas Industry B, Vol. 1, No. 1, pp. 96-102, 2014. ##
[79]. S. Rizvi, Nanotechnology applications in enhanced oil recovery (EOR), Valley Int J Digit Libr, pp. 135-143, 2024. ##
[80]. B. Peng, J. Tang, J. Luo, PP. Wang, B. Ding, and K. C. Tam, Applications of nanotechnology in oil and gas industry: Progress and perspective, The Canadian journal of chemical engineering, 96, (1), 91-100, 2018. ##
[81]. Franco C. A., R. Zabala, and F. B. 2017 Cortés, Nanotechnology applied to the enhancement of oil and gas productivity and recovery of Colombian fields, Journal of Petroleum Science and Engineering, 157, 39-55. ##