Experimental Analysis of the Mechanical Properties and Failure Behavior of Deep Coalbed Methane Reservoir Rocks
Abstract
:1. Introduction
2. Mineral Content and Microstructure Analysis of DCMRR
3. Analysis of the Mechanical Properties of DCMRR
3.1. Experimental Process
3.2. Experimental Result Analysis
4. Effects of Fracturing Fluid and Drilling Fluid on the Mechanical Properties of Coal Seam Rocks
4.1. Rock Immersion Experimental Procedure
4.2. Effect of Drilling Fluid on Coal Seam Rocks
4.3. Effect of Fracturing Fluid on Coal Seam Rocks
5. Conclusions
- (1)
- The roof of the coal seam is composed of deep gray argillaceous limestone with a calcite content exceeding 90%, while the floor consists of dark gray carbonaceous mudstone with a clay mineral content exceeding 60%. The rock in the coal seam section is dominated by clay minerals and amorphous substances. The clay minerals in both the roof, floor, and coal seam section primarily consist of kaolinite, and the content of montmorillonite is extremely low, making it less prone to hydration dispersion. Microcracks and pores are developed in the coal seam, facilitating the establishment of natural gas permeation pathways. However, these internal spaces may be filled with sheet-like kaolinite aggregates that are susceptible to hydration expansion.
- (2)
- The roof and floor of the coal seam are relatively dense and hard, exhibiting strong elasticity and compressive strength, with a more uniform fracture pattern after compression. In contrast, the rocks in the coal seam section have lower compressive strength and show pronounced plastic deformation characteristics. After compression-induced failure, fractures tend to extend along coal cleats, resulting in a distribution of fractures that intersects both longitudinally and transversely.
- (3)
- The content of kaolinite exhibits a notable correlation with the mechanical properties of DCMRR. As the kaolinite content increases, the compressive strength and elastic modulus of DCMRR decrease, while the Poisson’s ratio increases. The presence of kaolinite weakens the strength of DCMRR, and higher kaolinite content is associated with more pronounced deformation capabilities and greater water absorption expansion in the rock. During the horizontal drilling process, it is advisable to keep the wellbore trajectory as close to the roof of the coal seam as possible to minimize the risk of borehole collapse.
- (4)
- Under the immersion of drilling fluid and slickwater, the strength of the coal seam rock is significantly reduced. After the rock undergoes compressive failure, shear fracture zones and localized strong damage characteristics may appear. During the drilling process, precautions should be taken to prevent the risk of borehole collapse caused by the immersion of drilling fluid in the rock. Enhancing the hydration effect of slickwater on coal seam rock may contribute to the formation of a complex fracture network in the deep coalbed methane reservoir.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Number | Rock Property | Elasticity Modulus/MPa | Poisson’s Ratio | Compressive Strength/MPa |
---|---|---|---|---|
1 | Coal seam roof | 23,804.35 | 0.13 | 128.78 |
2 | Coal seam roof | 22,080.39 | 0.17 | 124.67 |
3 | Coal seam roof | 24,264.17 | 0.15 | 137.60 |
4 | Coal seam | 4665.02 | 0.32 | 23.04 |
5 | Coal seam | 6230.87 | 0.42 | 12.02 |
6 | Coal seam | 1479.86 | 0.41 | 6.07 |
7 | Coal seam floor | 17,105.68 | 0.19 | 75.87 |
8 | Coal seam floor | 21,198.39 | 0.21 | 84.39 |
9 | Coal seam floor | 19,708.39 | 0.26 | 46.16 |
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Wang, H.; Yang, S.; Zhang, L.; Xiao, Y.; Su, X.; Yu, W.; Zhou, D. Experimental Analysis of the Mechanical Properties and Failure Behavior of Deep Coalbed Methane Reservoir Rocks. Processes 2024, 12, 1125. https://doi.org/10.3390/pr12061125
Wang H, Yang S, Zhang L, Xiao Y, Su X, Yu W, Zhou D. Experimental Analysis of the Mechanical Properties and Failure Behavior of Deep Coalbed Methane Reservoir Rocks. Processes. 2024; 12(6):1125. https://doi.org/10.3390/pr12061125
Chicago/Turabian StyleWang, Haiyang, Shugang Yang, Linpeng Zhang, Yunfeng Xiao, Xu Su, Wenqiang Yu, and Desheng Zhou. 2024. "Experimental Analysis of the Mechanical Properties and Failure Behavior of Deep Coalbed Methane Reservoir Rocks" Processes 12, no. 6: 1125. https://doi.org/10.3390/pr12061125
APA StyleWang, H., Yang, S., Zhang, L., Xiao, Y., Su, X., Yu, W., & Zhou, D. (2024). Experimental Analysis of the Mechanical Properties and Failure Behavior of Deep Coalbed Methane Reservoir Rocks. Processes, 12(6), 1125. https://doi.org/10.3390/pr12061125