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Open AccessArticle
Mechanical Behavior and Damage Mechanisms of Saturated Coal-Rock Under Cyclic Freeze–Thaw Conditions with Different Cold Conditions
by
Hao Yang
Hao Yang 1,
Lin Wu
Lin Wu 1 and
Xiaoke Li
Xiaoke Li 2,*
1
School of Architecture and Civil Engineering, Zhengzhou Business University, Zhengzhou 451200, China
2
School of Civil Engineering and Transportation, North China University of Water Resources and Electric Power, Zhengzhou 450045, China
*
Author to whom correspondence should be addressed.
Processes 2025, 13(11), 3675; https://doi.org/10.3390/pr13113675 (registering DOI)
Submission received: 24 October 2025
/
Revised: 7 November 2025
/
Accepted: 10 November 2025
/
Published: 13 November 2025
Abstract
In situ physical coal fracturing is one of the key technologies for deep coal resource extraction, among which the liquid nitrogen cyclic freeze–thaw (LNCFT) technique demonstrates remarkable fracturing effects and promising application potential in physical coal breaking. To determine economically viable mining and coalbed methane (CBM) extraction cycles, this study builds on previous research and conducts a series of experiments to investigate the effects of different cold condition temperatures and freeze–thaw cycles on the mesoscopic surface structure and macroscopic mechanical properties of deep, water-rich coal-rock samples. A statistical damage constitutive model for saturated coal-rock under coupled freeze–thaw and loading, incorporating a damage threshold, was established to more accurately describe the damage patterns and mechanisms. The results indicate that lower cold condition temperatures lead to greater mesoscopic crack propagation, lower uniaxial compressive strength, and significantly reduced freeze–thaw failure cycles. Under −45 °C, saturated coal-rock samples experienced macroscopic failure after only 23 freeze–thaw cycles, which is 9 and 15 cycles fewer than those under −30 °C and −15 °C, respectively. Furthermore, measurements of wave velocities in three directions before and after testing revealed that freeze–thaw cycles caused particularly pronounced damage in the direction perpendicular to the bedding planes. Additionally, the established coupled statistical damage constitutive model provides a more accurate and intuitive analysis of the entire process from damage to failure under different cold conditions, showing that as the temperature decreases and freeze–thaw cycles increase, the coal-rock’s brittleness diminishes while plastic deformation and ductile failure characteristics are enhanced. In summary, for coal and CBM extraction using the LNCFT technique, it is recommended to extract gas once after approximately 35 cycles of liquid nitrogen injection. This study provides a theoretical basis for the application of liquid nitrogen cyclic freeze–thaw technology in deep coal fracturing.
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MDPI and ACS Style
Yang, H.; Wu, L.; Li, X.
Mechanical Behavior and Damage Mechanisms of Saturated Coal-Rock Under Cyclic Freeze–Thaw Conditions with Different Cold Conditions. Processes 2025, 13, 3675.
https://doi.org/10.3390/pr13113675
AMA Style
Yang H, Wu L, Li X.
Mechanical Behavior and Damage Mechanisms of Saturated Coal-Rock Under Cyclic Freeze–Thaw Conditions with Different Cold Conditions. Processes. 2025; 13(11):3675.
https://doi.org/10.3390/pr13113675
Chicago/Turabian Style
Yang, Hao, Lin Wu, and Xiaoke Li.
2025. "Mechanical Behavior and Damage Mechanisms of Saturated Coal-Rock Under Cyclic Freeze–Thaw Conditions with Different Cold Conditions" Processes 13, no. 11: 3675.
https://doi.org/10.3390/pr13113675
APA Style
Yang, H., Wu, L., & Li, X.
(2025). Mechanical Behavior and Damage Mechanisms of Saturated Coal-Rock Under Cyclic Freeze–Thaw Conditions with Different Cold Conditions. Processes, 13(11), 3675.
https://doi.org/10.3390/pr13113675
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