Tracking Multiphase Flows through Steep Reservoirs with External Constraint
Abstract
:1. Introduction
2. Mathematical Modeling
2.1. Governing Equations for Fluid Phase
2.2. Governing Equations for the Particle Phase
3. Solution to the Problem
4. Approximate Analytical Technique
5. Results and Discussion
6. Comparative Analysis
6.1. Current Study vs. a Previous Study
6.2. Eyring–Powell Multiphase vs. Newtonian Multiphase
6.3. Computational Validation
7. Concluding Remarks
- ➢
- The flow dynamics of multiphase suspensions are influenced by strong magnetic fields.
- ➢
- Promising results for the momentum of each flow can be achieved by adding extra particles.
- ➢
- Metallic suspensions produce better outcomes than those with crystals.
- ➢
- Theoretical and numerical findings were compared to an existing study for the limiting case and were found to be in good coherence.
- ➢
- The momentum of Eyring–Powell multiphase suspensions reduces due to their strong internal viscous forces.
- ➢
- The results of this study enhance our understanding of underground flows, specifically in the petroleum industry, with a particular focus on multiphase flows.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
Stress tensor | Material time derivative | ||
Velocity vector of fluid phase (m/s) | Velocity vector of particle phase (m/s) | ||
Material constant of first order | Length (m) | ||
Material constant of second order | The pressure | ||
Current vector | Magnetic force | ||
Drag force | Perturbation parameter | ||
Hartmann number | 𝐹𝑟 | Froude number | |
Angle of inclination | Density number | ||
Rivlin–Ericksen tensor | Electrical conductivity | ||
Density of the fluid (kg/m3) | The density of particle (kg/m3) | ||
Time (s) | Gravitational force (N) | ||
Material constants of Eyring–Powell fluid | Material constants of Eyring–Powell fluid | ||
Viscosity | |||
Subscripts | |||
𝑝 | Particle | 𝑓 | Fluid |
Appendix A
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Hafnium Particles | |||
---|---|---|---|
M | C | Newtonian | Eyring–Powell |
1.3 | 0.4 | 1.01527 | 0.824234 |
1.2 | 0.4 | 0.93194 | 0.971763 |
1.1 | 0.4 | 0.900418 | 1.05023 |
1.0 | 0.4 | 0.980922 | 1.2324 |
1.0 | 0.3 | 1.06759 | 1.1058 |
1.0 | 0.2 | 0.973297 | 1.00306 |
1.0 | 0.1 | 0.894159 | 0.91756 |
Parameters | Crystal Particles | ||
---|---|---|---|
M | C | Newtonian | Eyring–Powell |
1.3 | 0.4 | 0.855782 | 0.801604 |
1.2 | 0.4 | 0.931944 | 0.905695 |
1.1 | 0.4 | 1.01527 | 0.98921 |
1.0 | 0.4 | 1.10496 | 1.08234 |
1.0 | 0.3 | 1.00737 | 0.981451 |
1.0 | 0.2 | 0.925465 | 0.897408 |
1.0 | 0.1 | 0.855782 | 0.826402 |
Parameters | Hafnium Particles | ||
---|---|---|---|
Newtonian | Eyring–Powell | ||
5.2 | 0.798299 | 0.883064 | |
4.8 | 0.805479 | 0.910807 | |
4.4 | 0.814704 | 0.946691 | |
4.0 | 0.826833 | 0.802453 | |
4.0 | 0.855782 | 0.891055 | |
4.0 | 0.877995 | 0.959776 | |
4.0 | 0.891959 | 1.00333 |
Parameters | Crystal Particles | ||
---|---|---|---|
Newtonian | Eyring–Powell | ||
5.2 | 0.798299 | 0.767867 | |
4.8 | 0.805479 | 0.775143 | |
4.4 | 0.814704 | 0.784506 | |
4.0 | 0.826833 | 0.796842 | |
4.0 | 0.855782 | 0.826402 | |
4.0 | 0.877995 | 0.849201 | |
4.0 | 0.891959 | 0.863585 |
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Nazeer, M.; Ali, W.; Hussain, F. Tracking Multiphase Flows through Steep Reservoirs with External Constraint. Water 2023, 15, 3300. https://doi.org/10.3390/w15183300
Nazeer M, Ali W, Hussain F. Tracking Multiphase Flows through Steep Reservoirs with External Constraint. Water. 2023; 15(18):3300. https://doi.org/10.3390/w15183300
Chicago/Turabian StyleNazeer, Mubbashar, Waqas Ali, and Farooq Hussain. 2023. "Tracking Multiphase Flows through Steep Reservoirs with External Constraint" Water 15, no. 18: 3300. https://doi.org/10.3390/w15183300