Nanofluid-Driven Heat Transfer Augmentation for Enhanced Geothermal Extraction in U-Shaped Wells
Abstract
1. Introduction
2. Problem Definition and Mathematical Modeling
2.1. Physical Model
2.2. Mathematical Model
2.3. Grid-Independent Validation
2.4. Model Validation
2.5. Comparison and Selection of Nanofluid Types
3. Results and Discussion
3.1. Effect of Nanoparticle Concentration on Heat Transfer
3.2. Effect of Injection Rate on Heat Transfer
3.3. Quantification of Heat Extraction
3.4. Application in Geothermal Energy
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Parameters | Values |
|---|---|
| Reservoir bottom temperature (K) | 393.15 |
| Reservoir temperature gradient G (K/m) | 0.04 |
| Reservoir density (kg/m3) | 2300 |
| Reservoir heat capacity (J/(kg∙K)) | 800 |
| Reservoir thermal conductivity (W/(m∙K)) | 2.5 |
| Thermal conductivity of casing (W/(m∙K)) | 42.2 |
| Pipe surface roughness (mm) | 0.046 |
| Type | Base Fluid | Re | h W/(m2∙K) | (10−4 Pa∙s) | J/(kg∙K) | Refs. |
|---|---|---|---|---|---|---|
| Al2O3 | water | 3000–8000 | 6000–8000 | 9.8 | 3.58 | [32,33] |
| ZnO | water | 2000–8000 | 5000–7000 | 6.2 | 4.13 | [34] |
| TiO2 | water | 800–2400 | 750–1200 | 9.6 | 4.06 | [35,36] |
| Fe3O4 | water | 1600–2085 | 1700–1900 | 8.1 | 3.89 | [37] |
| Cu | water | 4500–8500 | 4000–7250 | 5.8 | 4.11 | [38] |
| SiO2 | EG/water | 1200–2000 | 440–600 | 35 | 3.14 | [39] |
| CuO-ZnO | EG/water | 1500–2000 | 1500–3000 | 13 | 3.73 | [40] |
| Volume Fractions % | Density kg/m3 | Specific Heat Capacity J/(kg∙K) | Thermal Conductivity W/(m∙K) | Viscosity Pa∙s |
|---|---|---|---|---|
| 0 | 998.2 | 4182.00 | 0.660 | 0.0001005 |
| 1 | 1027.95 | 4043.67 | 0.693 | 0.0010000 |
| 5 | 1146.82 | 3575.86 | 0.930 | 0.0013500 |
| 10 | 1295.41 | 3042.87 | 1.040 | 0.0098000 |
| Injection Rate (m3/d) | Inlet Temperature (K) | Outlet Temperature (K) | Inlet Pressure (105 Pa) | Outlet Pressure (105 Pa) |
|---|---|---|---|---|
| 9000 | 293.15 | 343.81 | 15.2 | 1.01 |
| 8000 | 293.15 | 346.78 | 12.3 | 1.01 |
| 7000 | 293.15 | 350.03 | 9.7 | 1.01 |
| 6000 | 293.15 | 353.52 | 7.52 | 1.01 |
| 5000 | 293.15 | 357.17 | 5.61 | 1.01 |
| 4000 | 293.15 | 360.71 | 4.03 | 1.01 |
| Injection Rate (m3/d) | Heat Extraction Power (kW) | Pump Extraction Power (kW) | Net Heat Output (kW) | Pump Extraction Power Ratio (%) |
|---|---|---|---|---|
| 9000 | 21,640.6 | 214.2 | 21,426.4 | 1.00 |
| 8000 | 20,363.9 | 151.5 | 20,212.3 | 0.75 |
| 7000 | 18,898.2 | 102.0 | 18,796.1 | 0.54 |
| 6000 | 17,192.3 | 65.5 | 17,126.8 | 0.38 |
| 5000 | 15,193.2 | 38.6 | 15,154.6 | 0.25 |
| 4000 | 12,826.6 | 20.3 | 12,806.3 | 0.16 |
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Guo, J.; Wang, J.; Gu, S.; Li, J.; Wang, Z.; Wang, S. Nanofluid-Driven Heat Transfer Augmentation for Enhanced Geothermal Extraction in U-Shaped Wells. Energies 2026, 19, 2706. https://doi.org/10.3390/en19112706
Guo J, Wang J, Gu S, Li J, Wang Z, Wang S. Nanofluid-Driven Heat Transfer Augmentation for Enhanced Geothermal Extraction in U-Shaped Wells. Energies. 2026; 19(11):2706. https://doi.org/10.3390/en19112706
Chicago/Turabian StyleGuo, Junhui, Jingyi Wang, Shefeng Gu, Jing Li, Zheng Wang, and Sijia Wang. 2026. "Nanofluid-Driven Heat Transfer Augmentation for Enhanced Geothermal Extraction in U-Shaped Wells" Energies 19, no. 11: 2706. https://doi.org/10.3390/en19112706
APA StyleGuo, J., Wang, J., Gu, S., Li, J., Wang, Z., & Wang, S. (2026). Nanofluid-Driven Heat Transfer Augmentation for Enhanced Geothermal Extraction in U-Shaped Wells. Energies, 19(11), 2706. https://doi.org/10.3390/en19112706

