Minimizing Formation Damage in Drilling Operations: A Critical Point for Optimizing Productivity in Sandstone Reservoirs Intercalated with Clay
Abstract
:1. Introduction
2. Formation Damage Mechanisms
3. Formation Damage Mechanisms in Sandstone
3.1. Mechanical Mechanisms
3.2. Chemical Mechanisms
3.3. Biological Mechanisms
3.4. Thermal Mechanisms
3.5. Remarks
4. Underground Reservoir–Drilling Fluid Interaction-Related Formation Damage
Remarks
5. Microscopic Examination of Formation Damage
5.1. Scanning Electron Microscopy (SEM) and Micro Computed Tomography (μCT)
5.2. X-ray Diffraction (XRD)
5.3. Thin-Section Analysis
6. Commonly Used Microscopic Characterisation Techniques
Remarks
7. Mitigating Formation Damage through the Design and Selection of Drilling Fluids
Remarks
8. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Acknowledgments
Conflicts of Interest
References
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Main Damage Mechanisms | Formation Damage Reaction(s) | Determinant Factor(s) | Resultant Effect(s) | References |
---|---|---|---|---|
Mechanical mechanisms | Fine migration | Flow rate/pH | Occlusion of pore throats | [38,39,40,41,42,43,44] |
Colloidal material/fluid invasion | Pressure differential | Internal filter cakes clogging pores | [45] | |
Phase trapping damage | Immiscibility | Adverse permeability | [6,46,47,48,49] | |
Tensile deformation | Weakened grain fabric | Alteration of pore networks and mineral surfaces | [50,51,52,53] | |
Chemical mechanisms | Clay swelling | Low salinity | Expansion inside micropore structures | [54] |
Dispersion and flocculation of clay minerals; precipitation of salts | pH and high salinity | Fine suspensions and constraints | [11,55] | |
Biological mechanisms | Growth and dispersion of microbes and release of hydrogen sulphide gas by sulphate-reducing bacteria (SRB) | Porosity less than 24%; temperature | Bioclogging of pore throats | [19,36,37] |
Thermal mechanism | Thermal decay of petroleum and formation minerals containing SO42− | Temperature greater than 200 ℃ | Less reactive clay becomes very reactive leading to clay swelling, fine flocculation and deflocculation | [31] |
Base Fluid | Dominant Cation | Physical Characteristics | Distinguishing Additive |
---|---|---|---|
Freshwater | Sodium | Mud weight | Lignosulfonate |
Seawater | Potassium | Fluid loss | Lime |
Saltwater | Calcium | Viscosity | Gypsum |
Native brine | Other | Other | Salt |
Saturated water | Polymer | ||
Diesel oil | Lignite | ||
Mineral oil | Specialty product |
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Halim, M.C.; Hamidi, H.; Akisanya, A.R. Minimizing Formation Damage in Drilling Operations: A Critical Point for Optimizing Productivity in Sandstone Reservoirs Intercalated with Clay. Energies 2022, 15, 162. https://doi.org/10.3390/en15010162
Halim MC, Hamidi H, Akisanya AR. Minimizing Formation Damage in Drilling Operations: A Critical Point for Optimizing Productivity in Sandstone Reservoirs Intercalated with Clay. Energies. 2022; 15(1):162. https://doi.org/10.3390/en15010162
Chicago/Turabian StyleHalim, Michael Chuks, Hossein Hamidi, and Alfred R. Akisanya. 2022. "Minimizing Formation Damage in Drilling Operations: A Critical Point for Optimizing Productivity in Sandstone Reservoirs Intercalated with Clay" Energies 15, no. 1: 162. https://doi.org/10.3390/en15010162
APA StyleHalim, M. C., Hamidi, H., & Akisanya, A. R. (2022). Minimizing Formation Damage in Drilling Operations: A Critical Point for Optimizing Productivity in Sandstone Reservoirs Intercalated with Clay. Energies, 15(1), 162. https://doi.org/10.3390/en15010162