Depositional facies and reservoir characteristics of the Early Cretaceous Lower Goru Formation, Lower Indus Basin Pakistan: Integration of petrographic and gamma-ray log analysis

Qamar UZ Zaman Dar , Pu Renhai , Shahid Ghazi , Shakeel Ahmed , Rana Imran Ali , Mubashir Mehmood

Petroleum ›› 2023, Vol. 9 ›› Issue (3) : 331 -341.

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Petroleum ›› 2023, Vol. 9 ›› Issue (3) :331 -341. DOI: 10.1016/j.petlm.2021.09.003
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Depositional facies and reservoir characteristics of the Early Cretaceous Lower Goru Formation, Lower Indus Basin Pakistan: Integration of petrographic and gamma-ray log analysis
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Abstract

The sand intervals of the Early Cretaceous Lower Goru Formation are a conventional reservoir, generally distributed in the Middle and Lower Indus Basin of Pakistan. Lithostratigraphically formation is classified into two parts; the upper parts are predominantly composed of shale, siltstone, and thin layers of alternate shale and sandstone, while the lower parts are composed of sandstone with interlayering of shale and limestone. The sandstone of the Lower Goru Formation has been further divided into A, B, C, and D sand intervals based on reservoir quality. Detailed depositional facies and reservoir characteristics are essential for the evaluation of hydrocarbon exploration and development. This paper aims to evaluate the depositional environment and reservoir characterization of the siliciclastic reservoir of the Early Cretaceous Lower Goru Formation by integrating the gamma-ray log patterns and petrographic analysis and scanning electron microscopic (SEM) analysis. Petrographic characterization of the sand intervals and Gamma-ray log signatures were used for the interpretation of the depositional environment of the reservoir intervals. Petrographic analysis reveals that the sandstone of the Lower Goru Formation is fine-to medium-grained, well-sorted, arkose or feldspathic arenite. Primary intergranular macroporosity, secondary intragranular macropores, and Intercrystalline micropores were identified within the sandstone by the SEM analysis. The diagenetic analysis suggests that the sandstone possesses high porosity, low permeability, and has undergone significant alterations such as compaction, quartz cementation, feldspar dissolution, and clay minerals alteration. Five electrofacies are interpreted based on gamma-ray log patterns including (1) funnel shape (FA); (2) bell shape (FB); (3) cylindrical shape (FC); (4) bow shape (FD); and (5) serrated shape (FE) patterns. The interpreted facies results reveal shoreface environment for A-sand, Tidal flat for B-sand, mixed tidal flat for C sand, Tide dominated mixed for D-sand, and transgressive shelf for E−sand. The present study will be helpful for the assessment of the reservoir quality of the Early Cretaceous Lower Goru Formation for further exploration and development in the Indus Basin of Pakistan.

Keywords

Depositional facies / Early cretaceous / Electrofacies / Gamma-ray pattern / Lower goru / Petrographic analysis

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Qamar UZ Zaman Dar, Pu Renhai, Shahid Ghazi, Shakeel Ahmed, Rana Imran Ali, Mubashir Mehmood. Depositional facies and reservoir characteristics of the Early Cretaceous Lower Goru Formation, Lower Indus Basin Pakistan: Integration of petrographic and gamma-ray log analysis. Petroleum, 2023, 9(3): 331-341 DOI:10.1016/j.petlm.2021.09.003

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Acknowledgements

The authors would like to thank the Director General of Petroleum Concessions DGPC of Pakistan, for the provision of Well data. We are also thankful to the Hydrocarbon Development Institute of Pakistan for lab access for core studies. The first author is thankful to the department of Geology Northwest University Xian for permission to use Laboratories for this work. Funding for this work was provided by the National Natural Science Foundation of China (grant No: 41390451). We are grateful to the administration of the School of International Cultural Exchange and the Department of Geology Northwest University for allowing us to undertake this research.

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