Carbon Dioxide (CO2) Injection Planning Using Reservoir Simulation: A Review

Authors

  • Dedi Kristanto UPN Veteran Yogyakarta
  • Hariyadi UPN Veteran Yogyakarta
  • Aditya Kurniawan UPN Veteran Yogyakarta
  • Eko Widi Pramudyohadi UPN Veteran Yogyakarta
  • Unggul Setiadi Nursidik UPN "Veteran" Yogyakarta
  • Muhammad Iqbal Arizzqi Nuzli UPN Veteran Yogyakarta
  • Fadli Ramdhani UPN Veteran Yogyakarta

DOI:

https://doi.org/10.30588/jo.v10i1.2580

Keywords:

CO2 injection, immiscible injection, miscible injection, reservoir simulation

Abstract

Carbon dioxide (CO2) injection planning using reservoir simulation has become a significant method in improving oil recovery (EOR) and simultaneously reducing CO2 emissions to the environment. CO2 injection divided into two mechanism, immiscible and miscible injection, both of which depend on the injection pressure as well as reservoir characteristics. This study reviews various CO2 injection mechanisms and their effectiveness through reservoir simulations. In CO2 injection, a compositional reservoir simulation is used that takes into account the hydrocarbon composition and its equation in pressure, volume, temperature (PVT) analysis. The simulation was used to evaluate the storage capacity, CO2 migration, and optimize the injection strategy. Results show that CO2 injection can increase oil recovery, especially in tight reservoirs. Reservoir simulation provides a deeper understanding of reservoir behavior post-CO2 injection and enables more optimal planning in maximizing hydrocarbon recovery. Overall, this study emphasizes the importance of using reservoir simulation in CO2 injection planning and optimization. With the right approach, this technology can significantly increase oil recovery while aiding climate change mitigation through underground CO2 storage.

References

Agarwal, R. K., Zhang, Z., & Zhu, C. (2013). Optimization of CO2 Storage in Saline Aquifers Using Water-Alternating Gas (WAG) Scheme-Case Study for Utsira Formation. AGU Fall Meeting Abstracts, 2013, H14A-02.

Al Adasani, A., & Bai, B. (2011). Analysis of EOR projects and updated screening criteria. Journal of Petroleum Science and Engineering, 79(1–2), 10–24.

AN, E., & Dessouky, S. . (2018a). Numerical Prediction of Oil Formation Volume Factor at Bubble Point for Black and Volatile Oil Reservoirs Using NonLinear Regression Models. Petroleum & Petrochemical Engineering Journal, 2(1). https://doi.org/10.23880/ppej-16000145

AN, E., & Dessouky, S. M. (2018b). An Empirical Correlation for Estimation of Formation Volume Factor of Gas Condensate Reservoirs at Separator Conditions. Petroleum & Petrochemical Engineering Journal, 2(1). https://doi.org/10.23880/ppej-16000147

Bachu, S. (2000). Sequestration of CO2 in geological media: criteria and approach for site selection in response to climate change. Energy Conversion and Management, 41(9), 953–970.

Bachu, S., & Adams, J. J. (2003). Sequestration of CO2 in geological media in response to climate change: Capacity of deep saline aquifers to sequester CO2 in solution. Energy Conversion and Management, 44(20), 3151–3175. https://doi.org/10.1016/S0196-8904(03)00101-8

Benson, S. M., & Cole, D. R. (2008). CO2 sequestration in deep sedimentary formations. Elements, 4(5), 325–331.

Bondor, P. L. (1992). Applications of carbon dioxide in enhanced oil recovery. Energy Conversion and Management, 33(5), 579–586. https://doi.org/https://doi.org/10.1016/0196-8904(92)90059-6

Bui, M., Adjiman, C. S., Bardow, A., Anthony, E. J., Boston, A., Brown, S., Fennell, P. S., Fuss, S., Galindo, A., & Hackett, L. A. (2018). Carbon capture and storage (CCS): the way forward. Energy & Environmental Science, 11(5), 1062–1176.

Carcoana, A. N. (1982). Enhanced oil recovery in Rumania. SPE Improved Oil Recovery Conference?, SPE-10699.

Chadwick, A., Arts, R., Bernstone, C., May, F., Thibeau, S., & Zweigel, P. (2008). Best practice for the storage of CO2 in saline aquifers-observations and guidelines from the SACS and CO2STORE projects (Vol. 14). British Geological Survey.

Chen, X., Yang, Z., Yu, H., Niu, Z., Li, W., Jia, N., Wang, W., Zhang, Y., Li, H., & Chang, Y. (2024). Enhancing Oil Recovery in Low Permeability Reservoirs through CO2 Miscible Flooding: Mechanisms and Dynamics. ACS Omega, 9, 49336–49347. https://api.semanticscholar.org/CorpusID:274505583

Claridge, E. L. (1972). Prediction of Recovery in Unstable Miscible Flooding. Society of Petroleum Engineers Journal, 12(02), 143–155. https://doi.org/10.2118/2930-pa

Dooley, J. J., Dahowski, R. T., Davidson, C. L., Wise, M. A., Gupta, N., Kim, S. H., & Malone, E. L. (2006). Carbon dioxide capture and geologic storage: a core element of a global energy technology strategy to address climate change. PNNL, Richland, WA.

Doughty, C., & Pruess, K. (2004). Modeling supercritical carbon dioxide injection in heterogeneous porous media. Vadose Zone Journal, 3(3), 837–847.

Fu, G.-T., Zheng, Z.-G., Zhang, Y., Dai, Y., Li, D., Zhan, J., Gao, C., & Fan, L. (2024). High-Pressure CO2 Solubility in Crude Oil and CO2 Miscibility Effects on Oil Recovery Performance in Low-Permeability Reservoirs. Energy & Fuels. https://api.semanticscholar.org/CorpusID:274590029

Gozalpour, F., Ren, S. R., & Tohidi, B. (2005). CO 2 EOR and Storage in Oil Reservoirs. 60(3), 537–546.

Hashan, M., Jahan, L. N., Uz Zaman, T., Elhaj, M., Imtiaz, S., & Hossain, M. E. (2018). Modelling of fluid flow in a petroleum reservoir using an engineering approach. Society of Petroleum Engineers - SPE Trinidad and Tobago Section Energy Resources Conference 2018. https://doi.org/10.2118/191153-ms

Holm, L. W., & Josendal, V. A. (1974). Mechanisms of Oil Displacement By Carbon Dioxide. JPT, Journal of Petroleum Technology, 26, 1427–1438. https://doi.org/10.2118/4736-PA

Holm, L. W., & Josendal, V. A. (1982). Effect of oil composition on miscible-type displacement by carbon dioxide. Society of Petroleum Engineers Journal, 22(01), 87–98.

Hosa, A., Esentia, M., Stewart, J., & Haszeldine, S. (2011). Injection of CO2 into saline formations: Benchmarking worldwide projects. Chemical Engineering Research and Design, 89(9), 1855–1864.

HU, Y., HAO, M., CHEN, G., SUN, R., & LI, S. (2019). Technologies and practice of CO2 flooding and sequestration in China. Petroleum Exploration and Development, 46(4), 753–766. https://doi.org/10.1016/S1876-3804(19)60233-8

Jarrell, P. M., Fox, C. E., Stein, M. H., & Webb, S. L. (2002). Practical Aspects of CO2 Flooding. Society of Petroleum Engineers. https://doi.org/10.2118/9781555630966

Jessen, K., Kovscek, A. R., & Orr, F. M. (2005). Increasing CO2 storage in oil recovery. Energy Conversion and Management, 46(2), 293–311. https://doi.org/10.1016/j.enconman.2004.02.019

Juanes, R., Spiteri, E. J., Orr Jr, F. M., & Blunt, M. J. (2006). Impact of relative permeability hysteresis on geological CO2 storage. Water Resources Research, 42(12).

Klins, M. A. (1984). Carbon dioxide flooding; basic mechanism and project design.

Kovscek, A. R. (2002). Screening criteria for CO2 storage in oil reservoirs. Petroleum Science and Technology, 20(7–8), 841–866.

Kristanto, D., Hariyadi, Pramudiohadi, E. W., Kurniawan, A., Nursidik, U. S., Asmorowati, D., Widiyaningsih, I., & Cahyaningtyas, N. (2025). Optimization of CO2 Injection Through Cyclic Huff and Puff to Improve Oil Recovery. Scientific Contributions Oil and Gas, 48(2), 53–67. https://doi.org/10.29017/scog.v48i2.1659

Kulkarni, M. M., & Kulkarni, M. M. (1999). Immiscible and miscible gas-oil displacements in porous media Immiscible and miscible gas-oil displacements in porous media IMMISCIBLE AND MISCIBLE GAS-OIL DISPLACEMENTS IN POROUS MEDIA. https://repository.lsu.edu/gradschool_theses/259

Leung, L. C. (1983). Numerical Evaluation of the Effect of Simultaneous Steam and Carbon Dioxide Injection on the Recovery of Heavy Oil. JPT, Journal of Petroleum Technology, 35(10), 1591–1599. https://doi.org/10.2118/10776-pa

Mansour, A. G. H., Gamadi, T., & Saoyleh, H. R. (2021). A simulation study of the effect of injecting carbon dioxide with nitrogen or lean gas on the minimum miscibility pressure. Society of Petroleum Engineers - SPE Trinidad and Tobago Section Energy Resources Conference 2021, TTCE 2021. https://doi.org/10.2118/200984-MS

Martin, J. W. (1951). Additional oil production through flooding with carbonated water. Producers Monthly, 15(7), 18–22.

Mathiassen, O. M. (2003). CO2 as injection gas for enhanced oil recovery and estimation of the potential on the Norwegian continental shelf. Norwegian University of Science and Technology, 1(May), 1–96.

http://moeinlas.persiangig.com/document/كتاب2/co2 as injection gas for enhanced oil recovery.pdf

Merchant, D. H. (2010). SPE 139516 Life Beyond 80 : A look at Conventional WAG Recovery Beyond 80 % HCPV Injection in CO 2 Tertiary Floods. 1–14.

Metz, B., Davidson, O., De Coninck, H. C., Loos, M., & Meyer, L. (2005). IPCC special report on carbon dioxide capture and storage. Cambridge: Cambridge University Press.

Nguyen, C., Loi, G., Russell, T. A., Yang, Y., Zulkifli, N. N., Amir, M. I. M., Manap, A. A. A., Shafian, S. R. M., Badalyan, A., Bedrikovetsky, P., Engineering, A., of Adelaide, T. U., Adelaide, Australia, S., Australia, Berhad, P. P. N., Lumpur., K., & Malaysia. (2024). Physics mechanisms of fines detachment and migration during CO2-water corefloods. https://api.semanticscholar.org/CorpusID:268554271

Rosiani, D., Permadi, A. K., Parlindungan, H., Siregar, S., & Gunawan, A. Y. (2022). applied sciences A New CO 2 -EOR Methods Screening Model Based on Interdependency Parameters.

Rotelli, F., Blunt, J. M., De Simoni, M., Dovera, L., Rotondi, M., & Lamberti, A. (2017). Co O2 injection in carbonate reservoirs: Combining eor and co O2 storage. Offshore Mediterranean Conference and Exhibition 2017, OMC 2017, 1–16.

Seyyedsar, S. M., Farzaneh, S. A., & Sohrabi, M. (2015). Enhanced heavy oil recovery by intermittent CO2 injection. Proceedings - SPE Annual Technical Conference and Exhibition, 2015-Janua, 6177–6193. https://doi.org/10.2118/175140-ms

Simon, R., & Graue, D. J. (1965). Generalized Correlations for Predicting Solubility, Swelling and Viscosity Behavior of CO2 -Crude Oil Systems. Journal of Petroleum Technology, 17(01), 102–106. https://doi.org/10.2118/917-pa

Song, Z., Zhu, W., Wang, X., & Guo, S. (2018). 2-D Pore-Scale Experimental Investigations of Asphaltene Deposition and Heavy Oil Recovery by CO2 Flooding. Energy and Fuels, 32(3), 3194–3201. https://doi.org/10.1021/acs.energyfuels.7b03805

Stalkup, F. I. (1983). Status of Miscible Displacement. JPT, Journal of Petroleum Technology, 35(4), 815–826. https://doi.org/10.2118/9992-PA

Taber, J. J., & Martin, F. D. (1983). Technical screening guides for the enhanced recovery of oil. SPE Annual Technical Conference and Exhibition?, SPE-12069.

Taber, J. J., Martin, F. D., & Seright, R. S. (1997). EOR Screening Criteria Reyisited - Part 1 : Introduction to Screening Criteria and Enhanced Recovery Field Projects. SPE Reservoir Engineering (Society of Petroleum Engineers), 12(3), 189–197. https://doi.org/10.2118/35385-pa

Tan, Y., Li, Q., Xu, L., Ghaffar, A., Zhou, X., & Li, P. (2022). A critical review of carbon dioxide enhanced oil recovery in carbonate reservoirs. Fuel, 328(July). https://doi.org/10.1016/j.fuel.2022.125256

Thapliyal, A., Kundu, S., Dimri, S. K., Dutt, A., Mishra, S., Aggarwal, A., Agarwal, A., Ojha, A., Bradley, D., & Giddins, M. A. (2018). High-speed robust simulation delivers fast, detailed results for a complex offshore field. Offshore Technology Conference Asia 2018, OTCA 2018. https://doi.org/10.4043/28442-ms

Thomas, S. (2008). Enhanced Oil Recovery-An Overview. Oil & Gas Science and Technology, 63(1), 9–19. https://doi.org/10.2516/ogst

Winkler, H. W., Bradley, H. B., & Gipson, F. W. (1987). Petroleum Engineering Handbook. Richardson, Texas: SPE.

Yellig, W. F., & Metcalfe, R. S. (1980). Determination and Prediction of CO 2 Minimum Miscibility Pressures.

Zhang, N., Wei, M., & Bai, B. (2018). Statistical and analytical review of worldwide CO2 immiscible field applications. Fuel, 220, 89–100.

Zhou, X., Yuan, Q., Peng, X., Zeng, F., & Zhang, L. (2018). A critical review of the CO2 huff ‘n’ puff process for enhanced heavy oil recovery. Fuel, 215(November 2017), 813–824. https://doi.org/10.1016/j.fuel.2017.11.092

Downloads

Published

2026-06-15

How to Cite

Kristanto, D., Hariyadi, Kurniawan, A., Pramudyohadi, E. W., Nursidik, U. S., Nuzli, M. I. A., & Ramdhani, F. (2026). Carbon Dioxide (CO2) Injection Planning Using Reservoir Simulation: A Review . Jurnal Offshore: Oil, Production Facilities and Renewable Energy, 10(1), 1–13. https://doi.org/10.30588/jo.v10i1.2580

Similar Articles

<< < 1 2 

You may also start an advanced similarity search for this article.