3D seismic modeling of the Amal oil field to evaluate CO(2) storage potential in depleted reservoirs, Southern Gulf of Suez

利用三维地震模型对阿迈勒油田进行研究,以评估苏伊士湾南部枯竭油藏中的二氧化碳储存潜力。

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Abstract

The Amal Oil Field in the Southern Gulf of Suez presents significant potential for Carbon Capture and Storage (CCS). This study integrates 3D geological modeling, seismic interpretation, and petrophysical analysis to assess the field's suitability for CO(2) sequestration. The structural analysis identifies a primary horst block bounded by major normal faults, providing an effective structural trap for CO(2) storage. Stratigraphic studies confirm the presence of robust sealing formations, including the Kareem shale and the evaporite-dominated Zeit and South Gharib Formations, ensuring long-term containment. Petrophysical evaluation of the Upper Rudies reservoir reveals favorable conditions for CO(2) injection, characterized by low shale volume, moderately high effective porosity, low water saturation, and adequate permeability. Reservoir property modeling, conducted using sequential Gaussian simulation (SGS), a statistical method used to distribute reservoir properties, such as porosity and permeability, throughout the reservoir by generating multiple possible scenarios based on a Gaussian distribution model, demonstrates significant lateral and vertical heterogeneity, with the central horst block exhibiting the highest storage potential. Permeability distribution varies from 0.1 to 100 mD, with an average of 10 mD in key reservoir zones, further supporting its suitability for CO(2) injection. CO(2) storage capacity estimation, incorporating grid pore volumes, CO(2) density, formation volume factor, and storage efficiency coefficient, suggests a storage potential ranging from 3.6 to 48.5 million tons. Spatial analysis highlights the central and northwestern regions as the most promising areas for injection due to higher porosity and net pay thickness. The Gulf of Suez boasts a unique geological setting, providing excellent structural traps for hydrocarbon and CO(2) storage. Its well-developed infrastructure, including extensive pipelines, processing facilities, and existing wells, supports efficient CO(2) transportation and injection, enhancing the feasibility of large-scale CO(2) storage with minimal additional investment. The region's strategic location also enhances its role in global trade and energy logistics. This study provides a comprehensive workflow for evaluating depleted hydrocarbon reservoirs for CCS applications, offering valuable insights for future CO(2) sequestration projects in the Gulf of Suez, a region underexplored in CCS literature. The findings contribute to Egypt's national carbon reduction initiatives and support global climate mitigation strategies.

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