| Literature DB >> 35764789 |
Hewan Li1, Siyang Sun2, Laigui Wang1, Jian Liu1, Ziheng Zhang1.
Abstract
The width and degree of connectivity of coal-rock joints directly affect the seepage capacity of flow energy such as gas. To study the damage law and mechanism of the coal-rock joint structure under the action of liquid nitrogen, two methods of liquid nitrogen unloaded and liquid nitrogen freeze-thaw were used to carry out damage modification experiments on coal-rock with different water saturation. Using OLS4000 laser confocal microscope and MH-25 universal testing machine to conduct electron microscope scanning and uniaxial compression test, measure the joint width expansions and Young's modulus of the coal-rock surface before and after the test, establish a physical and mechanical model of freeze-thaw damage to analyze the ice-wedge expansion stress influence on the damage of coal-rock joint structure and establish damage criterion. The research results show that the ice-wedge expansion stress, confining pressure, and temperature stress in the joint jointly affect the structural damage of coal-rock joints, and the ice-wedge expansion stress contributes the most. With the increase of water saturation, the damage to the coal-rock joint structure intensifies, and the ice-wedge expansion stress under the water saturation state has the most obvious influence on the damage to the coal-rock joint structure. The damage criterion constructed by the freeze-thaw damage physical-mechanical model can reveal the damage mechanism of the effect of ice-wedge expansion stress on the coal-rock joint structure. This paper has certain practical significance for the safety and stability evaluation of rock engineering in cold and arid regions and provides new ideas for effectively extracting clean energy such as coalbed methane and preventing rock bursts.Entities:
Year: 2022 PMID: 35764789 PMCID: PMC9240091 DOI: 10.1038/s41598-022-15185-8
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.996
Basic properties of coal samples.
| Coal sample name | Buried depth (m) | Approximate analysis (wt%) | |||
|---|---|---|---|---|---|
| long flame coal | 500 m | 6.04 | 30.29 | 24.03 | 40.91 |
M moisture content after air-drying, A ash content after air-drying, V volatile matter content after air-drying, FC fixed carbon content after air-drying[22].
Coal sample labeling.
| Coal sample classification | Water saturation 0% | Water saturation 50% | Water saturation 100% | |||
|---|---|---|---|---|---|---|
| Dry coal sample | Nitrogen | Saturation treatment | Nitrogen | Saturation treatment | Nitrogen | |
| Label | P5S0L0 | P5S0L1 | P5S50L0 | P5S50L1 | P5S100L0 | P5S100L1 |
Figure 1Test flow chart.
Figure 2Comparison of coal sample joints before and after the test.
Figure 3Liquid nitrogen fracturing drilling coal test device.
Figure 4Schematic diagram of heat transfer.
Surface joint expansion amount and joint expansion rate of coal samples with different saturation degrees.
| Coal sample numbering | Expand, | Expand rate, | ||||||||
|---|---|---|---|---|---|---|---|---|---|---|
| A | B | C | Average | A | B | C | Average | |||
| P5S0L0 | 316.17 | 248.67 | 377.83 | 314.22 | 340.52 | 294.24 | 401.91 | 345.56 | 31.34 | 0.09974 |
| P5S50L0 | 170.68 | 198.75 | 176.81 | 182.08 | 181.39 | 219.92 | 245.94 | 215.75 | 33.67 | 0.18492 |
| P5S100L0 | 132.75 | 151.50 | 135.25 | 140.84 | 172.28 | 188.50 | 178.23 | 179.67 | 38.83 | 0.2757 |
| P5S0L1 | 336.32 | 331.27 | 323.08 | 330.22 | 373.57 | 350.47 | 388.51 | 370.85 | 40.63 | 0.12304 |
| P5S50L1 | 211.51 | 292.48 | 305.29 | 269.76 | 303.63 | 318.24 | 345.85 | 322.57 | 52.81 | 0.19577 |
| P5S100L1 | 280.06 | 280.57 | 317.53 | 292.72 | 349.68 | 368.67 | 383.24 | 369.20 | 74.48 | 0.25444 |
Figure 5The curve of the test result of the change of the joint structure on the surface of the coal sample.
Figure 6Test result curve of coal sample strength damage analysis.
Figure 7Freeze–thaw damage physical and mechanical model.
Figure 8Schematic diagram of the oval joint plan.
Figure 9Schematic diagram of stress distribution of ellipsoid coal sample joint model.