Kinetic characterisation of sandstone exposed to high temperature-water cooling cycle treatments under the impact loading: from the perspective of geohazard

Hong Lei , Wang Wen , Cao Xuewen , Song Yuxiang , Lu XiaoWei , Jiang Shu , Zhai Cheng

Geohazard Mechanics ›› 2025, Vol. 3 ›› Issue (2) : 87 -98.

PDF (3667KB)
Geohazard Mechanics ›› 2025, Vol. 3 ›› Issue (2) : 87 -98. DOI: 10.1016/j.ghm.2024.12.001
Research article
research-article

Kinetic characterisation of sandstone exposed to high temperature-water cooling cycle treatments under the impact loading: from the perspective of geohazard

Author information +
History +
PDF (3667KB)

Abstract

Enhanced Geothermal Systems (EGS) improve geothermal energy extraction but can rapidly cool high-temperature rocks, leading to internal fractures that weaken mechanical properties and pose risks such as well collapses and seismic events. Understanding the physico-mechanical changes in dry hot rocks, particularly sandstone, when high-temperature water cooling cycles is essential. This study examines the dynamic behavior of sandstone through impact tests at varying temperatures and cycles. Results show that as temperature and cycle count increased, peak dynamic stress decreased while dynamic strain increased. A critical temperature range of 500-600 ​°C was identified, beyond which significant changes in dynamic stress and strain occurred, indicating severe damage to the specimens’ stability. High-temperature water cooling cycles enhanced energy reflectivity and dissipated energy, reducing transmittance. The study revealed that between 200 and 400 ​°C, tensile damage predominated, while between 500 and 600 ​°C, compression-shear damage was dominant. Increasing temperature and cycles led to more extensive cracking and increased rock fragmentation. These findings provide a basis for assessing the stability of sandstone and offer theoretical insights into mechanical properties, energy transfer, and crack propagation in geothermal energy extraction, aiding in the prevention of geological disasters.

Keywords

High-temperature-water cooling cycle / Sandstone / Kinetic characterization / Crack extension / Energy dissipation / Well collapses

Cite this article

Download citation ▾
Hong Lei, Wang Wen, Cao Xuewen, Song Yuxiang, Lu XiaoWei, Jiang Shu, Zhai Cheng. Kinetic characterisation of sandstone exposed to high temperature-water cooling cycle treatments under the impact loading: from the perspective of geohazard. Geohazard Mechanics, 2025, 3(2): 87-98 DOI:10.1016/j.ghm.2024.12.001

登录浏览全文

4963

注册一个新账户 忘记密码

CRediT authorship contribution statement

Lei Hong: Writing-review & editing, Writing-original draft, Validation, Software, Methodology, Investigation, Formal analysis, Data curation. Wen Wang: Supervision, Project administration, Funding acquisition, Data curation, Conceptualization. Xuewen Cao: Writing-review & editing, Writing-original draft, Visualization, Validation, Supervision, Software, Methodology, Investigation, Formal analysis, Data curation. Yuxiang Song: Supervision, Formal analysis, Data curation. XiaoWei Lu: Supervision, Software, Resources. Shu Jiang: Software. Cheng Zhai: Resources.

Declaration of conflict of interest

The authors declare no conflicts of interest regarding the publication of this article.

Acknowledgements

Thanks to the support by the National Natural Science Foundation of China (No. 52174109); Henan University Science and Technology Innovation Talent Programme (No. 23HASTIT011); research and development of key technologies and complete sets of equipment for safe cooperative exploitation of natural gas, coal and uranium resources, Henan Province key research and development project (No. 241111320800); 2023 Safety Discipline “Double First-Class” Construction Project, Cultivation Category: Major Technological Breakthroughs (No. AQ20230501); and 2023 Basic Research Business Fund Special Project, National Major Achievement Cultivation, Theory and Key Technologies for the Cooperative Exploitation of Natural Gas and Coal Resources.

References

[1]

J. Xu, S. Luo, X. Xiao, Review of the experimental studies of the cracking behaviors of fractured rocks under compression, Geohazard Mech. 2 (2) ( 2024) 59-82.

[2]

A.P. Khmelinin, A.I. Konurin, E.V. Denisova, Simulation of electromagnetic highfrequency wave propagation processes in multilayer geo-structures, Geohazard Mech. 1 (3) ( 2023) 203-207.

[3]

K. Li, C. Qi, M. Wang, J. Li, H. Chen,Research on the influence of rock fracture toughness of layered formations on the hydraulic fracture propagation at the initial stage, Geohazard Mech. 2 (2) ( 2024) 121-130.

[4]

W.G.P. Kumari, P.G. Ranjith, M.S.A. Perera, B.K. Chen, I.M. Abdulagatov,Temperature-dependent mechanical behaviour of Australian Strathbogie granite with different cooling treatments, Eng. Geol. 229 ( 2017) 31-44.

[5]

W.G.P. Kumari, P.G. Ranjith, M.S.A. Perera, B.K. Chen,Experimental investigation of quenching effect on mechanical, microstructural and flow characteristics of reservoir rocks: thermal stimulation method for geothermal energy extraction, J. Petrol. Sci. Eng. Sci. Eng. 162 ( 2018) 419-433.

[6]

M. Liang, S. Zhang, B. Shu, Influence of different cooling methods on the splitting characteristics of high-temperature granite in Brazil, J. Water Resour. 29 (2) ( 2018) 186-193.

[7]

Z. Huang, Y. Zhang, W. Wu, Mechanical and fluctuation characterisation of hightemperature marble cooled by water, Geotechnics 37 (2) ( 2016) 367-375.

[8]

T. Yin, X. Li, W. Cao, K.W. Xia, Effects of thermal treatment on tensile strength of Laurentian granite using Brazilian test, Rock Mech. 48 (6) ( 2015)2213-2223.

[9]

L. Yu, H. Peng, G. Li, Y. Zhang, Z. Han, H. Zhu, Experimental study on granite under high temperature-water cooling cycle, Geotechnics 42 (4) ( 2021) 1025-1035.

[10]

Y. Li, E. Zhai, Z. Zhang, Q. Peng, Q. Yang, Effect of high temperature heating-water cooling cycle on the physical and mechanical properties of granite, China High-Tech (8) ( 2021) 67-70.

[11]

Y. Yu, Y. Zhao, Experimental study on the mechanical properties of granite cooled by water at high temperature within 600_C, J. Rock Mech. Eng. 29 (5) ( 2010) 892-898.

[12]

H. Wang, Z. Wang, C. Xiong, L. Cheng, S. Zhan, Experimental study on radial compression mechanical characteristics of circular granite under warm and wet cycling conditions, J. Rock Mech. Eng. 39 (S2) ( 2020) 3260-3270.

[13]

T. Yin, X. Li, Z. Zhou, L. Hong, Z. Ye, Study on dynamic mechanical properties of siltstone after high temperature, J. Undergr.Spac. Eng. (6) ( 2007) 1060-1063.

[14]

Y. Yu, Q. Xu, X. Diao, Z. Yan, Influence of cyclic impact on the characteristics of sandstone under peripheral pressure, J. Huazhong Univ. Sci. Technol. 47 (6) ( 2019) 127-132.

[15]

D. Li, X. Sun, Z. Zhou, X. Cai, G. Qiu,Dynamic cumulative damage characteristics of granite under multiple impact loads, Exp. Mech. 31 (6) ( 2016) 827-835.

[16]

D. Lin, S. Chen, Experimental study on the damage law of rock under cyclic impact loading, J. Rock Mech. (22) ( 2005) 4094-4098.

[17]

Q. Ping, Q. Ma, P. Yuan, Analysis of energy dissipation in SHPB splitting tensile test of rock specimens, J. Min. Saf. Eng. 30 (3) ( 2013) 401-407.

[18]

B. Dai, X. Luo, Q. Sin, Y. Chen, Y. Liu, Analysis of damage characteristics and energy dissipation of rocks with holes under cyclic impact loading, Chinese J. Saf. Sci. 30(7) ( 2020) 69-77.

[19]

J. Zhu, X. Li, F. Guang, S. Wang, Dynamic characteristics of rocks under uniaxial cyclic impact and its damage modelling, J.Geotech. Eng. 35 (3) ( 2013) 531-539.

[20]

T. Wang, Z. Song, J. Yang, Dynamic response characteristics of weathered red sandstone under cyclic impact, J. Rock Mech. Eng. 38 (S1) ( 2019) 2772-2778.

[21]

W. Zhang, B. Shi, Z. Mu, Experimental study of coal rock crushing and energy dissipation law under impact load, J. Min. Saf. Engx. 33 (2) ( 2016) 375-380.

[22]

W. Wang, H. Li, H. Gu, Experimental study on strength characteristics of waterbearing coal samples loaded by three-dimensional dynamic-static combination, J. Rock Mech. Eng. 36 (10) ( 2017) 2406-2414.

[23]

W. Wang, H. Li, R. Yuan, Mechanical characteristics and fine mechanical analysis of water-bearing coal samples loaded by dynamic-static combination, J. Coal 41 (3)( 2016) 611-617.

[24]

W. Wang, Y. Wu, X. Lu, G. Zhang, Study on small coal pillar in gob-side entry driving and control technology of the surrounding rock in a high-stress roadway, Front. Earth Sci. 10 ( 2023) 1020866.

[25]

Q. Zheng, Mechanical Properties and Fracture Characteristics of Damaged Sandstone under Dynamic Loading, Anhui University of Technology, 2021.

[26]

C. Su, S. Wei, B. Qin, Y. Yang, Experimental study on the influence mechanism of high temperature on mechanical properties of fine sandstone, Geotechnics 38 (3)( 2017) 623-630.

AI Summary AI Mindmap
PDF (3667KB)

496

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/