Temporary Plugging Agent Evaluation Technology and Its Applications in Shale Reservoirs in the Sichuan Basin
Abstract
:1. Introduction
2. Current Status of Evaluation Technology for Temporary Plugging Agents
2.1. Research Progress in Experimental Equipment
2.2. Research Progress in Experimental Evaluation Methods
3. Research on the Evaluation Device and Method for Temporary Plugging Agent and Diversion Fracturing
3.1. Development of Temporary Plugging Agent and Fracturing Evaluation Device for Temporary Plugging
- Formation of rough fracture surface: Rock cores with very similar mineral and geomechanical characteristics are selected, and artificial fracturing is used to perform tension damage on the cores to obtain randomly generated shale rough surfaces in order to further obtain the morphology parameters of the rough fracture surface of shale oil reservoirs in the Sichuan Basin.
- Numerical simulation of the rough surface of cracks: Using a 3D laser scanner to scan the cut surface of the rock core, due to the design of a rectangular joint plate with temporary blockage inside the joint and fewer point cloud data, the efficiency of interpolation calculation will be improved. Therefore, we need to simplify the scanning model surface. The rectangular tool is directly used to select the middle position of the original model, and the excess data are deleted before saving. The Kriging interpolation method is used to regularize the original rough rock plate data, with the regularized data grid set to 0.1 mm × 0.1 mm. After normalization, the data retained the original sampling data features completely, meeting the subsequent analysis requirements (Figure 2).
- The fracture surface in the formation is uneven, and there are many description methods to describe the overall distribution characteristics of fracture roughness. The fractal dimension method is mainly used to describe the characteristics of rough fracture surfaces. Due to the complexity and irregularity of rough walls, ordinary mathematical functions cannot accurately describe the complex state of rough walls. The fractal theory can precisely solve this problem. The continuous random superposition method and midpoint displacement method are used to establish the required self-similar fractal surface, which is a stationary random process:
- 4.
- Based on the fractal dimension of the fracture, according to the fracture shape and requirements of different fracture widths, 3D-printing technology is used to obtain rough fracture plates with different fracture widths, which are installed in the rough surface plate holder to simulate the plugging turning ability of temporary plugging agent in real fractures to optimize the type of temporary plugging agent and optimize the concentration and ratio of temporary plugging agent.
3.2. Evaluation Method for Temporary Plugging Agent and Diversion Fracturing Experiment
- Set experimental parameters (including temporary plugging agent concentration, experimental temperature, displacement, and seam width), and monitor the system pressure, temporary plugging agent injection amount, and temporary plugging agent outflow at the end of the crack in real-time via a computer.
- Add clean water to the sealed stirring metal tank, and heat the sealed stirring metal tank and rough surface plate holder to the set experimental temperature.
- Select the type and particle size of the temporary plugging agent, add the temporary plugging agent to the sealed stirring metal tank in proportion, tighten the sealing cap, set the speed, and mix the temporary plugging agent with clean water evenly to prepare a temporary plugging agent solution with the set concentration.
- Turn on the high-pressure pump, pump clean water, and allow the fluid to fill the entire pipeline until there are no more bubbles in the pipeline. Connect the injection pipeline to the top of the sealed mixing metal tank to push the piston.
- Pump clean water according to the set flow rate, record the system pressure, temporary plugging agent injection amount, and temporary plugging agent outflow at the end of the crack. During the pumping process, if no blockage is formed within 30 min, the experiment will be stopped.
- At the end of the experiment, stop the experiment, remove the seam board, and observe the distribution of temporary blocking agents in the seam.
- Process experimental data, measure the pressure-bearing capacity of temporary plugging agents, and analyze the plugging effect of temporary plugging agents.
4. Research on Particle-Size Optimization of Temporary Plugging Agent Combination
4.1. Temporary Plugging Agent Filling Crack Sealing Theory
4.2. Matching Relationship between Particle-Size Composition and Crack Width of Temporary Plugging Agent
4.3. Temporary Plugging Agent Combination and Dynamic Temporary Plugging Experimental Results
5. Application in Shale Oil Reservoirs
5.1. Characteristics of Shale Oil Reservoirs in Sichuan Basin
5.2. Process Optimization to Improve the Complexity of Cracks
5.3. Application Effect
6. Conclusions
- The shale oil reservoir in the Sichuan Basin is characterized via the interaction of shale and limestone, poor physical properties, and undeveloped fractures. The fracture pressure difference between shale and limestone is 9~10 MPa, which is not conducive to the longitudinal expansion of fractures. Therefore, it is necessary to carry out temporary blocking and diversion fracturing technology to improve the complexity of fractures in reservoir reconstruction.
- Taking into account the morphology of fractures and the permeability of reservoirs, a three-level temporary plugging and turning evaluation device has been developed, which can simulate three-level turning fractures under conditions of 3–15 mm crack opening and different roughness. The different pressure levels of bursting discs are set between each level of fracture to achieve turning simulation under 5–30 MPa, achieving integrated simulation functions such as temporary plugging agent migration, plugging holes, turning, etc., in the wellbore.
- On the basis of the theory of temporary plugging agent filling crack sealing, a matching relationship between the particle-size composition of the temporary plugging agent and crack width was established, and technical countermeasures were proposed for the combination and particle-size optimization of the temporary plugging agent.
- The results of the on-site application show that the proposed temporary plugging and fracturing technology measures have significantly increased the volume of reservoir transformation, and the test oil production has increased from “oil splashes” to nearly 2 tons/day, achieving a significant breakthrough in “oil production”.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
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Parameter | Domestic Enterprises or Oil Fields in Area | |||||
---|---|---|---|---|---|---|
KeMS | LanD | JieBT | NengXK | Shengli Oilfield | Changqing Oilfield | |
Particle size | √ | √ | √ | √ | √ | √ |
Screen residue | √ | √ | √ | √ | √ | √ |
residue | √ | √ | √ | √ | √ | √ |
Density | √ | √ | √ | √ | √ | √ |
Dissolution rate | √ | √ | √ | √ | √ | √ |
plugging strength | √ | / | / | / | / | √ |
Steering ability | / | / | / | / | / | / |
Well No. | Lithology | Coefficient of Stress Difference in Two Directions | Fracture Pressure (MPa) |
---|---|---|---|
LA1 | Shale | 0.17 | 95~97 |
Limestone | 0.16 | 102~107 | |
RA1 | Shale | 0.19 | 67~70 |
Limestone | 0.19 | 79~81 |
Well | Number of Construction Sections | Average Seam Length (m) | Average Joint Width (m) | Average Seam Height (m) | SRV 104 m3 |
---|---|---|---|---|---|
LA 1 | 10 | 331 | 88 | 78 | 4813 |
RA 1 | 19 | 311 | 93 | 89 | 5636 |
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Wang, L.; Yang, J.; Peng, J.; Han, H.; Wang, Y.; Lv, Z. Temporary Plugging Agent Evaluation Technology and Its Applications in Shale Reservoirs in the Sichuan Basin. Processes 2023, 11, 2799. https://doi.org/10.3390/pr11092799
Wang L, Yang J, Peng J, Han H, Wang Y, Lv Z. Temporary Plugging Agent Evaluation Technology and Its Applications in Shale Reservoirs in the Sichuan Basin. Processes. 2023; 11(9):2799. https://doi.org/10.3390/pr11092799
Chicago/Turabian StyleWang, Liang, Jian Yang, Junliang Peng, Huifen Han, Yang Wang, and Zefei Lv. 2023. "Temporary Plugging Agent Evaluation Technology and Its Applications in Shale Reservoirs in the Sichuan Basin" Processes 11, no. 9: 2799. https://doi.org/10.3390/pr11092799
APA StyleWang, L., Yang, J., Peng, J., Han, H., Wang, Y., & Lv, Z. (2023). Temporary Plugging Agent Evaluation Technology and Its Applications in Shale Reservoirs in the Sichuan Basin. Processes, 11(9), 2799. https://doi.org/10.3390/pr11092799