Analysis of Water Injection and Heat Recovery Potential of Abandoned Oil Wells Transformed into Geothermal Wells in Northern Shaanxi
Abstract
:1. Introduction
2. Heat Transfer Analysis
2.1. Geothermal Geological Conditions in the Study Area
- (1)
- Thermal reservoir temperature conditions
- (2)
- Regional geological resource reserves
2.2. Direct Water Intake from Bottom Water Reservoir
2.3. Injection–Production Heat Exchange
2.3.1. Four-Injection–One-Production Scheme
2.3.2. One-Injection–Four-Production Scheme
3. Conclusions
- (1)
- The edge and bottom water of the Chang 2 bottom water reservoir in the western part of northern Shaanxi are more active, and the geothermal temperature condition is better, giving it the potential to replace abandoned wells with geothermal wells for water and heat recovery.
- (2)
- If the direct water extraction of the reformed well is equivalent to the depletion production, the formation pressure drops seriously, and cannot be continuously mined.
- (3)
- CMG simulation shows that when the water injection pressure is between 10 and 20 MPa, the water injection pressure increases and the average annual heat recovery increases.
- (4)
- In the CMG model, the simulation time of 50 years is longer. In the early stage, there are four production wells with the one-injection–four-production method, so the total heat exchange is greater than that of the four-injection–one-production wells. However, with development, the water production rate of the one-injection–four-production wells decreases rapidly, while the water production rate of the four-injection–one-production wells is relatively stable. Therefore, four-injection–one-production wells have the potential for long-term development in well reform. However, in the simulated 50 years, the annual average heat production proves that one-injection–four-production wells are feasible in a short period of time.
- (5)
- The average annual heat production of the other two injection–production methods is converted into a standard coal production between 190 and 420 t. Therefore, whether using the one-injection–four-production method or the four-injection–one-production method, it is proven that the Chang 2 bottom water reservoir in the western part of northern Shaanxi has the ability to take water and heat.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Physical Parameters | Parameter Value |
---|---|
Porosity | 18% |
Permeability | 20 × 10−3 μm2 |
Reservoir top depth | 1200 m |
Reservoir thickness | 6 m |
Reservoir bottom depth | 1206 m |
Reservoir temperature | 45 °C |
Reservoir pressure | 7 MPa |
Rock compression coefficient | 0.27 × 10−4 MPa−1 |
Formation water salinity | 28,870 mg/L |
Injection–Production Method | Injection Pressure (MPa) | Single Well Annual Heat Production (J) | Annual Cumulative Heat Recovery of System (J) |
---|---|---|---|
Four-injection–one-production | 10 | 5.68 × 1012 | 5.68 × 1012 |
15 | 7.71 × 1012 | 7.71 × 1012 | |
20 | 9.65 × 1012 | 9.65 × 1012 | |
One-injection–four-production | 10 | 2.33 × 1012 | 9.33 × 1012 |
15 | 2.70 × 1012 | 1.08 × 1013 | |
20 | 3.06 × 1012 | 1.22 × 1013 |
Injection–Production Method | Injection Pressure (MPa) | Annual Heat Extraction (J) | Convert Standard Coal Quantity (t) | Reduced C Emissions (t) | Reduced CO2 Emissions (t) | Profits (Ten Thousand Yuan) |
---|---|---|---|---|---|---|
Four-injection–one-production | 10 | 5.68 × 1012 | 193.8 | 129.8 | 476.1 | 38.8 |
15 | 7.71 × 1012 | 263.0 | 176.2 | 646.2 | 52.6 | |
20 | 9.65 × 1012 | 329.2 | 220.6 | 808.8 | 65.8 | |
One-injection-four-production | 10 | 9.33 × 1012 | 318.2 | 213.2 | 781.7 | 63.6 |
15 | 1.08 × 1013 | 368.6 | 247.0 | 905.5 | 73.7 | |
20 | 1.22 × 1013 | 417.0 | 279.4 | 1024.3 | 83.4 |
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Yu, H.; Liu, S.; Pang, Y.; Wang, P.; Gao, Q. Analysis of Water Injection and Heat Recovery Potential of Abandoned Oil Wells Transformed into Geothermal Wells in Northern Shaanxi. Energies 2025, 18, 551. https://doi.org/10.3390/en18030551
Yu H, Liu S, Pang Y, Wang P, Gao Q. Analysis of Water Injection and Heat Recovery Potential of Abandoned Oil Wells Transformed into Geothermal Wells in Northern Shaanxi. Energies. 2025; 18(3):551. https://doi.org/10.3390/en18030551
Chicago/Turabian StyleYu, Huagui, Shi Liu, Yanyan Pang, Peng Wang, and Qian Gao. 2025. "Analysis of Water Injection and Heat Recovery Potential of Abandoned Oil Wells Transformed into Geothermal Wells in Northern Shaanxi" Energies 18, no. 3: 551. https://doi.org/10.3390/en18030551
APA StyleYu, H., Liu, S., Pang, Y., Wang, P., & Gao, Q. (2025). Analysis of Water Injection and Heat Recovery Potential of Abandoned Oil Wells Transformed into Geothermal Wells in Northern Shaanxi. Energies, 18(3), 551. https://doi.org/10.3390/en18030551