Research on the Fracture Propagation Law of Separate Layered Fracturing in Unconventional Sandstone Reservoirs
Abstract
:1. Introduction
2. Experimental Procedure
2.1. Experiment Preparation
2.2. Experiment Results
3. Constitutive Equations
3.1. Basic Theory of the Cam Model
- (1)
- In the (e, p′) plane, a curve exists in that all stresses in the normally consolidated clay follow this path, which is called the normal consolidation line (NCL). This line provides volume hardening rules that can be generalized to general stress conditions;
- (2)
- There also exists a line in the (e, p′, q) space, and all residual states follow this path, regardless of the experiment class and the initial conditions. This line is parallel to the normal consolidation line in the (e, p′) plane, where shear deformation occurs without volume deformation;
- (3)
- The stress path obtained from the consolidated drainage and undrained experiments is located in a unique state surface, generally known as the Roscoe surface. In fact, in the undrained path, the soil hardens with the development of the plastic volume strain where the sum of the elastic and plastic strain increments of the volume strain remains constant. The value of the Roscoe surface lies in the fact that it provides a basis for selecting the type of the yield surface.
3.2. Constitutive Equation of the Cam Model
- (1)
- Energy equation
- (2)
- Yield surface equation
- (3)
- Stress-strain relationship
3.3. The Modified Cam-Clay Model
4. Numerical Simulation
4.1. Model Building
4.2. The Influence of the Different Displacements
4.3. The Influence of the Different Viscosities
4.4. The Influence of the Different Filtration Coefficients
5. Discussion
- (1)
- The extension of cracks and the settlement law of proppant during the filling and sand removal stages.
- (2)
- The extension direction of cracks under conditions such as different perforation orientations and in situ stresses.
6. Conclusions
- (1)
- Under different permeability conditions, the compressive strength of the unconsolidated sandstone decreases with the increase in the permeability. Under the same stress conditions, unconsolidated sandstone with a high permeability has a greater strain before fracture pressure;
- (2)
- This Cambridge model is edited and correcting the error of the non-zero increase in the shear strain. The hardening parameters were used to represent the plastic volumetric strain when the shear stress was zero;
- (3)
- A three-dimensional numerical model for the separate layer fracturing of the unconsolidated sandstone was established through software. The impact of different construction conditions on hydraulic crack propagation was investigated. Maintaining a fixed fracturing fluid displacement and increasing the viscosity and filtration coefficient of the fracturing fluid, unconsolidated sandstone was found to be more likely to form short and wide cracks. Keeping the viscosity and filtration coefficient of the fracturing fluid unchanged and increasing the displacement resulted in unconsolidated sandstone to be more likely to form long and wide fractures.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Physical and Mechanical Properties of Rock | |||
---|---|---|---|
Rebound curve slope, | 0.025 | Slope of isobaric consolidation curve, λ | 0.1 |
Slope of critical state line, | 1.2 | Poisson’s ratio | 0.25 |
Over consolidation ratio, OCR | 1.203 | Slope of recompression curve, λs | 0.03 |
Biot | 1 | Upper permeability limit, mD | 15,000 |
Layer Position | Layer Number | Interval Interpretation of Reservoir Location | Thickness (m) | Porosity (%) | Permeability (10−3 μm2) | Water Saturation (%) | Argillaceous Content (%) | Lithology | Result of Interpretation | |
---|---|---|---|---|---|---|---|---|---|---|
Top Boundary | Bottom Boundary | |||||||||
S2 | 25 | 816 | 824 | 8.0 | 35.5 | 4235.2 | 26.8 | 1.1 | \ | Heavy oil reservoir |
S2 | 28 | 831 | 834.9 | 3.9 | 33.2 | 3659.3 | 44.5 | 1.4 | \ | Heavy oil reservoir |
S2 | 30 | 842 | 844.8 | 2.8 | 33.9 | 3577.3 | 36 | 1.3 | \ | Heavy oil reservoir |
Parameter | Reservoir | Interlayer |
---|---|---|
Elasticity modulus (Gpa) | 5 | 8 |
Poisson’s ratio | 0.25 | 0.3 |
Permeability (mD) | 1500 | 1000 |
Horizontal minimum principal stress (Mpa) | 12 | 14 |
Horizontal maximum principal stress (Mpa) | 17 | 17 |
Vertical stress (Mpa) | 22 | 22 |
Pore ratio | 0.35 | 0.35 |
Tensile strength (Mpa) | 0.2 | 0.2 |
Fracture energy (J/m2) | 100 | 300 |
) | 0.8 | 0.8 |
Fracturing fluid viscosity (mPa·s) | 20–200 | - |
Displacement (m3/min) | 1–3 | - |
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Ran, Q.; Zhou, X.; Xu, M.; Dong, J.; Ren, D.; Li, R. Research on the Fracture Propagation Law of Separate Layered Fracturing in Unconventional Sandstone Reservoirs. Sustainability 2023, 15, 10444. https://doi.org/10.3390/su151310444
Ran Q, Zhou X, Xu M, Dong J, Ren D, Li R. Research on the Fracture Propagation Law of Separate Layered Fracturing in Unconventional Sandstone Reservoirs. Sustainability. 2023; 15(13):10444. https://doi.org/10.3390/su151310444
Chicago/Turabian StyleRan, Qiquan, Xin Zhou, Mengya Xu, Jiaxin Dong, Dianxing Ren, and Ruibo Li. 2023. "Research on the Fracture Propagation Law of Separate Layered Fracturing in Unconventional Sandstone Reservoirs" Sustainability 15, no. 13: 10444. https://doi.org/10.3390/su151310444
APA StyleRan, Q., Zhou, X., Xu, M., Dong, J., Ren, D., & Li, R. (2023). Research on the Fracture Propagation Law of Separate Layered Fracturing in Unconventional Sandstone Reservoirs. Sustainability, 15(13), 10444. https://doi.org/10.3390/su151310444