Size-Dependent Pore Responses to Stress and Temperature of Anthracite Samples from the Qinshui Basin in North China Using NMR: Implications for Deep Coalbed Methane Exploitation
Abstract
1. Introduction
2. Materials and Methods
2.1. Samples
2.2. Experiments
3. Results
3.1. T2 Spectral Distribution
3.2. Pore Structure Variations
4. Discussion
4.1. Size-Dependent Responses of Pores to Stresses
4.2. Size-Dependent Responses of Pores to Temperatures
5. Conclusions
- (1)
- The studied anthracite samples exhibit significant stress sensitivity in their porosity. As confining pressure increases, total porosity declines, while the stress-induced porosity damage rate rises. Notably, distinct pore types respond differently to pressure: micro and macropores/fractures show reduced porosity under elevated confining pressures, whereas mesopores display a marginal increase.
- (2)
- The studied anthracite samples show limited temperature sensitivity in porosity. At lower temperatures (20–35 °C), the porosity damage rate increases with rising temperature. At elevated temperatures (35–50 °C), however, the temperature response diverges due to structural heterogeneity in pre-existing fissures across samples.
- (3)
- The porosity of the studied anthracite samples presents intrinsic sensitivity to both stresses and temperatures, which are further modulated by the developmental state of pre-existing fracture networks and mineral infilling.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Sample ID | V/% | I/% | E/% | Ro,max/% | Mad/% | Ad/% | Vdaf/% | FCad/% |
|---|---|---|---|---|---|---|---|---|
| ZZ | 81.33 | 18.67 | / | 2.33 | 1.0 | 11.1 | 8.7 | 79.2 |
| SH | 77.58 | 22.42 | / | 3.18 | 1.6 | 37.6 | 13.1 | 54.2 |
| Temperature/°C | Peak Area | |||||||||
|---|---|---|---|---|---|---|---|---|---|---|
| SH | ZZ | |||||||||
| 10 MPa | 15 MPa | 20 MPa | 25 MPa | 30 MPa | 10 MPa | 15 MPa | 20 MPa | 25 MPa | 30 MPa | |
| 20 | 18,843.04 | 18,107.59 | 17,893.03 | 17,885.48 | 17,609.60 | 16,340.07 | 16,029.68 | 15,872.34 | 16,150.42 | 15,740.08 |
| 25 | 18,621.23 | 18,117.75 | 17,807.68 | 17,769.36 | 17,489.87 | 16,272.97 | 16,137.5 | 16,018.98 | 15,900.74 | 15,799.34 |
| 30 | 18,253.16 | 17,888.36 | 17,709.21 | 17,547.73 | 17,592.01 | 16,036.95 | 15,930.22 | 15,516.65 | 15,852.37 | 15,796.09 |
| 35 | 17,894.00 | 17,613.20 | 17,595.19 | 17,315.39 | 17,309.19 | 15,642.58 | 15,497.34 | 15,857.73 | 15,773.04 | 15,779.13 |
| 40 | 17,732.33 | 17,523.07 | 17,238.39 | 17,156.47 | 17,216.85 | 15,718.95 | 15,626.12 | 15,659.02 | 15,807.07 | 15,781.10 |
| 45 | 17,569.63 | 17,571.69 | 17,472.94 | 17,254.76 | 17,203.55 | 16,026.58 | 15,720.43 | 15,781.55 | 15,896.19 | 15,830.16 |
| 50 | 17,453.82 | 17,664.22 | 17,362.51 | 17,255.42 | 16,959.63 | 16,157.25 | 15,813.86 | 15,721.82 | 15,976.97 | 15,990.48 |
| Temperature /°C | Total/% | Micropore/% | Mesopore/% | Macropore-Fracture/% | ||||
|---|---|---|---|---|---|---|---|---|
| SH | ZZ | SH | ZZ | SH | ZZ | SH | ZZ | |
| 20 | −6.55 | −3.67 | −3.48 | −8.43 | 10.28 | 632.09 | −30.02 | −100.00 * |
| 25 | −6.08 | −2.91 | −3.98 | −5.55 | 41.31 | 661.81 | −30.00 | −100.00 |
| 30 | −3.62 | −1.50 | −1.77 | −6.67 | 91.42 | 188.54 | −30.00 | −0.01 |
| 35 | −3.27 | 0.87 | −1.53 | −1.78 | 39.67 | 253.75 | −27.23 | −57.16 |
| 40 | −2.91 | 0.40 | −1.73 | −2.19 | 32.01 | 319.82 | −23.68 | −100.00 |
| 45 | −2.08 | −1.23 | −1.11 | −3.59 | 72.55 | 405.76 | −26.14 | −100.00 |
| 50 | −2.83 | −1.03 | −2.23 | −3.34 | 30.69 | 633.59 | −20.00 | −61.69 |
| Confining Pressure /MPa | Total/% | Micropore/% | Mesopore/% | Macropore-Fracture/% | ||||
|---|---|---|---|---|---|---|---|---|
| SH | ZZ | SH | ZZ | SH | ZZ | SH | ZZ | |
| 10 | −7.37 | 1.13 | −1.95 | 5.29 | −8.88 | 18.23 | −42.87 | −56.98 |
| 15 | −2.45 | 1.36 | 0.13 | 1.79 | −7.49 | 9.97 | −26.27 | −22.91 |
| 20 | −2.96 | 0.96 | −0.24 | 0.94 | −57.68 | 23.39 | −14.29 | −34.19 |
| 25 | −3.52 | 1.09 | −0.52 | 1.20 | −6.49 | 27.29 | −31.53 | −52.22 |
| 30 | −3.69 | −1.57 | −0.68 | −0.25 | 7.98 | 17.98 | −34.69 | −100.00 |
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Zhang, C.; Fu, X.; Wang, A.; Li, K.; Zhang, B. Size-Dependent Pore Responses to Stress and Temperature of Anthracite Samples from the Qinshui Basin in North China Using NMR: Implications for Deep Coalbed Methane Exploitation. Processes 2026, 14, 1884. https://doi.org/10.3390/pr14121884
Zhang C, Fu X, Wang A, Li K, Zhang B. Size-Dependent Pore Responses to Stress and Temperature of Anthracite Samples from the Qinshui Basin in North China Using NMR: Implications for Deep Coalbed Methane Exploitation. Processes. 2026; 14(12):1884. https://doi.org/10.3390/pr14121884
Chicago/Turabian StyleZhang, Cong, Xuehai Fu, Aisong Wang, Kexin Li, and Baoxin Zhang. 2026. "Size-Dependent Pore Responses to Stress and Temperature of Anthracite Samples from the Qinshui Basin in North China Using NMR: Implications for Deep Coalbed Methane Exploitation" Processes 14, no. 12: 1884. https://doi.org/10.3390/pr14121884
APA StyleZhang, C., Fu, X., Wang, A., Li, K., & Zhang, B. (2026). Size-Dependent Pore Responses to Stress and Temperature of Anthracite Samples from the Qinshui Basin in North China Using NMR: Implications for Deep Coalbed Methane Exploitation. Processes, 14(12), 1884. https://doi.org/10.3390/pr14121884
