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Original Articles

Effect of pressure and CO2 content on the asphaltene precipitation in the light crude oil

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References

  • Aminzadeh, R., M. Nikazar, and B. Dabir. 2019. The effect of nonylphenol on asphaltene aggregation: A molecular dynamics approach. Petroleum Science and Technology 37 (16):1883–90. doi:10.1080/10916466.2017.1305402.
  • Chen, J., T. Li, and S. Wu. 2018a. Changes in the properties of conventional crude oil before and after CO2 flooding. Petroleum Science and Technology 36 (20):1642–8. doi:10.1080/10916466.2018.1496117.
  • Chen, J., T. Li, and S. Wu. 2018b. Influence of pressure and CO2 content on the asphaltene precipitation and oil recovery during CO2 flooding. Petroleum Science and Technology 36 (8):577–82. doi:10.1080/10916466.2018.1430154.
  • Cho, J., T. H. Kim, N. Chang, and K. S. Lee. 2019. Effects of asphaltene deposition-derived formation damage on three-phase hysteretic models for prediction of coupled CO2 enhanced oil recovery and storage performance. Journal of Petroleum Science and Engineering 172:988–97. doi:10.1016/j.petrol.2018.09.006.
  • Dunn, N. J., B. Gutama, and W. G. Noid. 2019. Simple simulation model for exploring the effects of solvent and structure on asphaltene aggregation. The Journal of Physical Chemistry B 123 (28):6111–22. doi:10.1021/acs.jpcb.9b04275.
  • Fakher, S., and A. Imqam. 2019. Asphaltene precipitation and deposition during CO2 injection in nano shale pore structure and its impact on oil recovery. Fuel 237:1029–39. doi:10.1016/j.fuel.2018.10.039.
  • Moghadasi, R., S. Kord, J. Moghadasi, and H. Dashti. 2019. Mechanistic understanding of asphaltenes surface behavior at oil/water interface: An experimental study. Journal of Molecular Liquids 285:562–71. doi:10.1016/j.molliq.2019.04.123.
  • Mohammed, S., and G. Gadikota. 2019. The influence of CO2 on the structure of confined asphaltenes in calcite nanopores. Fuel 236:769–77. doi:10.1016/j.fuel.2018.08.124.
  • Nascimento, F. P., M. M. Souza, G. M. Costa, and S. A. Vieira de Melo. 2018. Modeling of the asphaltene onset pressure from few experimental data: A comparative evaluation of the Hirschberg method and the cubic-plus-association equation of state. Energy & Fuels 33 (5):3733–42. doi:10.1021/acs.energyfuels.8b03087.
  • Qian, K., S. Yang, H. E. Dou, J. Pang, and Y. Huang. 2019. Formation damage due to asphaltene precipitation during CO2 flooding processes with NMR technique. Oil & Gas Science and Technology – Revue D’ifp Energies Nouvelles 74:11. doi:10.2516/ogst/2018084.
  • Setaro, L. L., V. J. Pereira, G. M. Costa, and S. A. V. de Melo. 2019. A novel method to predict the risk of asphaltene precipitation due to CO2 displacement in oil reservoirs. Journal of Petroleum Science and Engineering 176:1008–17. doi:10.1016/j.petrol.2019.02.011.
  • Shen, Z., and J. J. Sheng. 2017. Investigation of asphaltene deposition mechanisms during CO2 huff-n-puff injection in Eagle Ford shale. Petroleum Science and Technology 35 (20):1960–6. doi:10.1080/10916466.2017.1374403.
  • Wang, Z., J. Xu, H. Liu, J. Hou, and Y. Zhang. 2017. Effect of pressure, temperature, and mass fraction of CO2 on the stability of the asphaltene constituents in crude oil. Petroleum Science and Technology 35 (22):2109–14. doi:10.1080/10916466.2017.1384838.
  • Xu, B. 2017. CO2 miscible flooding in low permeability sandstone reservoirs and its influence on crude oil properties. Petroleum Science and Technology 35 (21):2024–9. doi:10.1080/10916466.2017.1377235.
  • Yaseen, S., and G. A. Mansoori. 2018. Asphaltene aggregation onset during high-salinity waterflooding of reservoirs (a molecular dynamic study). Petroleum Science and Technology 36 (21):1725–32. doi:10.1080/10916466.2018.1506809.
  • Zhang, W., Y. Wang, and T. Ren. 2017. Influence of injection pressure and injection volume of CO2 on asphaltene deposition. Petroleum Science and Technology 35 (4):313–8. doi:10.1080/10916466.2016.1258419.
  • Zheng, L., C. Jing, J. Liu, and L. Zhang. 2017. Change of the chemical and physical properties of heavy oil before and after CO2 treatment. Petroleum Science and Technology 35 (16):1724–30. doi:10.1080/10916466.2017.1360909.

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