A Semi-Analytical Method for Three-Dimensional Heat Transfer in Multi-Fracture Enhanced Geothermal Systems
Abstract
:1. Introduction
2. Materials and Methods
- The fracture water is incompressible, and the rock matrix is impermeable and homogenous.
- The thermal properties of the rock matrix and fracture water are independent of temperature variation.
- The aperture of the fractures remains uniform and invariant without considering the deformation induced by hydro-mechanical coupling or thermo-mechanical interaction. Due to the fact that the fracture aperture is relatively small compared to the fracture surface, each fracture is simplified as a plane that coincides with its axisymmetric surface.
- The heat transfer coefficient between the rock matrix and fracture water is infinite, which means that the temperature of the fracture water is equal to that of the rock matrix at the fracture surfaces.
- There is steady-state water flow in the fractures because the heat exchange in a geothermal reservoir is a long-term process.
2.1. Water Flow in Fractures
2.2. Heat Transfer in Fractures
2.3. Heat Transfer in the Rock Matrix
2.4. Initial and Boundary Condition
2.5. Numerical Formation
2.5.1. Integral Equation Method
2.5.2. Numerical Calculation
3. Results and Discussion
3.1. Verification of the Temporal Semi-Analytical Method
3.1.1. Injection into an Infinite Rectangular Fracture
3.1.2. Injection into an Infinite Radial Fracture
3.2. Multi-Fracture EGS
3.2.1. Effects of the Fracture Spacing
3.2.2. Effects of the Fracture Number
4. Conclusions
- The temporal semi-analytical method provides an accurate solution and, thus, can serve as a benchmark for numerical methods.
- The fracture spacing and fracture number are two key factors controlling the heat extraction from an EGS. Increasing the fracture spacing maintains the production temperature by decreasing the thermal interaction between fractures. A multi-fracture also extends the life of a geothermal reservoir by increasing the contacting area between the fracture water and rock matrix. In terms of improving heat exploitation, increasing the fracture number is more efficient than increasing fracture spacing.
- The proposed method is efficient in calculations and is applicable to the design and optimization of an EGS.
Author Contributions
Funding
Conflicts of Interest
References
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Parameters | Values | Parameters | Values |
---|---|---|---|
Water density ρw (Kg m−3) | 1000 | Water diffusivity kw (m2 s−1) | 0.01 |
Rock density ρr (Kg m−3) | 2650 | Rock conductivity λr (W m−1 °C−1) | 2.59 |
Water-specific heat cw (J kg−1 °C−1) | 4180 | Initial rock temperature T0 (°C−1) | 90 |
Rock-specific heat cr (J kg−1 °C−1) | 1000 | Injected water temperature Tin (°C−1) | 20 |
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Liu, D.; Xiang, Y. A Semi-Analytical Method for Three-Dimensional Heat Transfer in Multi-Fracture Enhanced Geothermal Systems. Energies 2019, 12, 1211. https://doi.org/10.3390/en12071211
Liu D, Xiang Y. A Semi-Analytical Method for Three-Dimensional Heat Transfer in Multi-Fracture Enhanced Geothermal Systems. Energies. 2019; 12(7):1211. https://doi.org/10.3390/en12071211
Chicago/Turabian StyleLiu, Dongdong, and Yanyong Xiang. 2019. "A Semi-Analytical Method for Three-Dimensional Heat Transfer in Multi-Fracture Enhanced Geothermal Systems" Energies 12, no. 7: 1211. https://doi.org/10.3390/en12071211
APA StyleLiu, D., & Xiang, Y. (2019). A Semi-Analytical Method for Three-Dimensional Heat Transfer in Multi-Fracture Enhanced Geothermal Systems. Energies, 12(7), 1211. https://doi.org/10.3390/en12071211