The Impact of 3D Prism Cavity for Enhanced Oil Recovery Using Different Nanomaterials
Abstract
:1. Introduction
2. Mathematical Model
2.1. Assumptions
- i.
- There is only one-dimensional flow as it moves through the cavity.
- ii.
- The rock in the reservoir is thought to be sandstone and tidy.
- iii.
- The fluid that exits the cavity is incompressible.
- iv.
- The Darcy Law is in effect during the flooding process.
- v.
- The effect of chemical reactions is ignored.
- vi.
- The flow inside the cavity is isothermal.
- vii.
- The nanofluid flow is Newtonian, and the effect of gravity is ignored.
2.2. Geometry Creation
2.3. Mathematical Equations
2.4. Initial and Boundary Conditions
2.5. Mesh Test
2.6. Experimental Validation
3. Results
4. Discussion
5. Conclusions
- The nanoparticles introduced the relative permeability of the oil and water phases into the cavity change, reducing friction between the two. This reduces the capillary forces that keep oil in reservoirs and makes recovery easier.
- The oil recovery rate increases as the flow rate decreases, and the maximum amount of oil recovered at Q = 0.05 mL/min is 99.1% in the case of Si, which shows that the effect of flow is very important in reservoir geometry to obtain maximum oil recovery.
- It is also observed that with an increase in the nanoparticle concentration at each pore volume injection, the oil recovery rate also increases.
- It was also discovered that the reservoir’s shape has a substantial impact on oil recovery enhancement, since it directly influences flow behavior, which can increase oil recovery.
- The findings also indicate that Si provides a 6.3% higher recovery than Al2O3.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Physical Quantities | Quantities | |
---|---|---|
Parameter of the geometry | Largest width | 0.30 m |
In radius | 0.12 m | |
Circumference | 0.15 m | |
Smallest width | 0.25 m | |
Length of the side | 0.14 m | |
Volume and cross-sectional area | Core volume | 0.49 |
Inlet cross sectional area | 0.45 | |
Physical properties | Inlet temperature of the fluid | 300 K |
Initial temperature in cavity | 290 K | |
Initial input pressure | 1 atm | |
Final output pressure | 1 atm |
Nanomaterials/Properties | Physical Property | Value |
---|---|---|
Si | Density | 2220 |
Heat capacity | 745 | |
Thermal conductivity | 36 | |
Volume fraction | 0.01 | |
Diameter | 40 nm | |
Molecular mass | 60 nm | |
Al2O3 | Density | 3970 |
Heat capacity | 765 | |
Thermal conductivity | 36 | |
Volume fraction | 0.01 | |
Diameter | 40 nm | |
Molecular mass | 101.96 nm | |
Properties of Oil | Density | 829 |
Heat capacity | 1670 | |
Thermal conductivity | 0.13 | |
Viscosity | 4.5 × 10−4 Pa·s | |
Properties of Water | Density | 990 |
Heat capacity | 4200 | |
Thermal conductivity | 0.6 | |
Viscosity | Pa·s |
Physical Properties | Values | |
---|---|---|
Reservoir rock | Rock density | 2714 kg |
Mesh size | Diameter | 3 |
Boundary Points | Boundary Conditions | Flow Boundary |
---|---|---|
Boundary 1 | u · n = Q | Inlet |
Boundary 2 | No flow enters or leaves | |
Boundary 3 | No flow enters or leaves | |
Boundary 4 | Outlet |
Grid Number | 1 | 2 | 3 | 4 | 5 | 6 | 7 |
---|---|---|---|---|---|---|---|
Grid Size | 30 | 3000 | 2456 | 4802 | 13,403 | 30,251 | 325,230 |
Properties | Range with SI |
---|---|
Diameter | 4.15 cm |
Length | 5.78 cm |
Permeability | 110.4 mD |
Porosity | 17.5% |
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Zafar, M.; Sakidin, H.; Dzulkarnain, I.; Hussain, A.; Sheremet, M.; Nazar, R.; Al-Yaari, A.; Asri, N.A.M.; Bashir, S. The Impact of 3D Prism Cavity for Enhanced Oil Recovery Using Different Nanomaterials. Materials 2023, 16, 4011. https://doi.org/10.3390/ma16114011
Zafar M, Sakidin H, Dzulkarnain I, Hussain A, Sheremet M, Nazar R, Al-Yaari A, Asri NAM, Bashir S. The Impact of 3D Prism Cavity for Enhanced Oil Recovery Using Different Nanomaterials. Materials. 2023; 16(11):4011. https://doi.org/10.3390/ma16114011
Chicago/Turabian StyleZafar, Mudasar, Hamzah Sakidin, Iskandar Dzulkarnain, Abida Hussain, Mikhail Sheremet, Roslinda Nazar, Abdullah Al-Yaari, Nur Asyatulmaila Mohamad Asri, and Shazia Bashir. 2023. "The Impact of 3D Prism Cavity for Enhanced Oil Recovery Using Different Nanomaterials" Materials 16, no. 11: 4011. https://doi.org/10.3390/ma16114011
APA StyleZafar, M., Sakidin, H., Dzulkarnain, I., Hussain, A., Sheremet, M., Nazar, R., Al-Yaari, A., Asri, N. A. M., & Bashir, S. (2023). The Impact of 3D Prism Cavity for Enhanced Oil Recovery Using Different Nanomaterials. Materials, 16(11), 4011. https://doi.org/10.3390/ma16114011