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Advancing CO2 enhanced oil recovery and storage in unconventional oil play—Experimental studies on Bakken shales

Author

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  • Jin, Lu
  • Hawthorne, Steven
  • Sorensen, James
  • Pekot, Lawrence
  • Kurz, Bethany
  • Smith, Steven
  • Heebink, Loreal
  • Herdegen, Volker
  • Bosshart, Nicholas
  • Torres, José
  • Dalkhaa, Chantsalmaa
  • Peterson, Kyle
  • Gorecki, Charles
  • Steadman, Edward
  • Harju, John

Abstract

Although well logs and core data show that there is significant oil content in Bakken shales, the oil transport behavior in these source rocks is still not well understood. This lack of understanding impedes the drilling and production operations in the shale members. A series of experiments were conducted to investigate the rock properties of the Bakken shales and how to extract oil from the shales using supercritical CO2. High-pressure mercury injection tests showed that pore throat radii are less than 10nm for most pores in both the upper and lower Bakken samples. Such small pore sizes yield high capillary pressure in the rock and make fluid flow difficult. Total organic carbon content was measured using 180 shale samples, and kerogen was characterized by Rock-Eval pyrolysis, which indicated considerable organic carbon present (10–15wt%) in the shales. However, oil and gas are difficult to mobilize from organic matter using conventional methods. A systematic experimental procedure was carried out to reveal the potential for extracting hydrocarbons from the shale samples using supercritical CO2 under typical Bakken reservoir conditions (e.g., 34.5MPa and 110°C). Results showed that supercritical CO2 enables extraction of a considerable portion (15–65%) of hydrocarbons from the Bakken shales within 24 h. Measurement of CO2 adsorption isotherm showed that Bakken shale has a considerable capability to trap CO2 (up to 17mg/g) under a wide range of pressures. The experimental results suggest the possibility of using supercritical CO2 injection to increase the ultimate oil recovery and store a considerable quantity of CO2 in the Bakken Formation.

Suggested Citation

  • Jin, Lu & Hawthorne, Steven & Sorensen, James & Pekot, Lawrence & Kurz, Bethany & Smith, Steven & Heebink, Loreal & Herdegen, Volker & Bosshart, Nicholas & Torres, José & Dalkhaa, Chantsalmaa & Peters, 2017. "Advancing CO2 enhanced oil recovery and storage in unconventional oil play—Experimental studies on Bakken shales," Applied Energy, Elsevier, vol. 208(C), pages 171-183.
  • Handle: RePEc:eee:appene:v:208:y:2017:i:c:p:171-183
    DOI: 10.1016/j.apenergy.2017.10.054
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    References listed on IDEAS

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    2. Jiaping Tao & Siwei Meng & Dongxu Li & Lihao Liang & He Liu, 2024. "Experimental Evaluation of Enhanced Oil Recovery in Shale Reservoirs Using Different Media," Energies, MDPI, vol. 17(14), pages 1-12, July.
    3. Seyed Kourosh Mahjour & Jobayed Hossain Badhan & Salah A. Faroughi, 2024. "Uncertainty Quantification in CO 2 Trapping Mechanisms: A Case Study of PUNQ-S3 Reservoir Model Using Representative Geological Realizations and Unsupervised Machine Learning," Energies, MDPI, vol. 17(5), pages 1-13, March.

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