Rock and Soil Mechanics ›› 2023, Vol. 44 ›› Issue (10): 2953-2966.doi: 10.16285/j.rsm.2022.0803

• Fundamental Theroy and Experimental Research • Previous Articles     Next Articles

A creep constitutive model of salt rock considering hardening and damage effects

YANG Jun-tao1, 2, SONG Yan-qi1, 2, MA Hong-fa2, YANG Jiang-kun2, SHAO Zhi-xin2, BAO Wei2   

  1. 1. State Key Laboratory Coal Resources and Safe Mining, China University of Mining & Technology (Beijing), Beijing 100083, China; 2. School of Mechanics and Civil Engineering, China University of Mining and Technology (Beijing), Beijing 100083, China
  • Received:2022-05-30 Accepted:2022-10-05 Online:2023-10-13 Published:2023-10-16
  • Supported by:
    This work was supported by the Research Fund of the State Key Laboratory of Coal Resources and Safe Mining (SKLCRSM20KFA11).

Abstract: Salt rock is an ideal medium for storing fossil energy and highly radioactive nuclear waste, and the study of creep mechanical properties of salt rock holds great significance for the safe operation of underground storage in salt caverns. In this study, a creep constitutive model for salt rock considering damage and hardening effects was developed, based on the component combination model and fractional calculus theory, so as to reasonably reflect the two mechanisms of damage and hardening existing in the creep process of salt rocks. The elastic element considering time-dependent damage was used to describe the damage deformation of salt rock in the initial loading stage in this model, and the fractional Murayama body was used to describe the viscoelastic plasticity creep mechanical behavior of salt rocks in transient creep stage. Meanwhile, a hardening function, which describes the strengthening characteristics with time of the yield strength of salt rocks, was introduced to reflect the hardening mechanism of salt rocks, and a transient plastic element was available to depict unrecoverable transient deformation. A nonlinear dashpot element with strain-triggering was constructed based on Kachanov creep damage law and Lemaitre strain equivalence principle. The dashpot better characterized the nonlinear deformation of salt rock in the accelerating creep stage. One-dimensional and three-dimensional creep equations for salt rock considering hardening and damage effects were derived based on the combination model theory. With the characteristics analysis of the isochronous stress-strain curves of the existing uniaxial and triaxial salt rock creep tests, the start-up stress threshold of Murayama body was determined. The parameters in the model were identified by combining isochronous stress-strain curves and creep tests data. The results show that the established creep constitutive model can describe the creep mechanical properties of salt rock in different stress states using only one set of parameters, which can provide a certain theoretical basis for predicting the creep deformation characteristics of salt rock.

Key words: salt rock creep, damage, plastic hardening, fractional derivative, constitutive model

CLC Number: 

  • TU457
[1] AN Ran, CHEN Xin, ZHANG Xian-wei, WANG Gang, GAO Hao-dong , . Dynamic evolution characteristics of microscopic cracks in steel slag- stabilized soil under uniaxial loading [J]. Rock and Soil Mechanics, 2023, 44(增刊): 300-308.
[2] LIANG Jin-ping, JING Hao-yong, HOU Gong-yu, LI Xiao-rui, ZHANG Ming-lei, . Meso-damage and mechanical characteristics of surrounding rock under unloading condition [J]. Rock and Soil Mechanics, 2023, 44(增刊): 399-409.
[3] YANG Kai-cheng, WU Shu-guang, LIAO Hai-cheng, ZHANG Hui, . Mechanism analysis and model test research on double anchor rods [J]. Rock and Soil Mechanics, 2023, 44(增刊): 495-503.
[4] JI Nan, WU Xiang-yun, REN Hui-qi, ZHAI Chao-chen, ZHANG Yue-fei, ZHAO Rong-guo, NIE Xiao-dong, . Experimental study on anti-explosion performance of structures with different height-to-span ratios under plane charge explosion in rock [J]. Rock and Soil Mechanics, 2023, 44(8): 2276-2286.
[5] XIE Kang, SU Qian, CHEN Xiao-bin, LIU Bao, WANG Wu-bin, WANG Xun, DENG Zhi-xing, . Element model test on polyurethane crushed stone waterproof bonding layer of ballastless track [J]. Rock and Soil Mechanics, 2023, 44(8): 2308-2317.
[6] XIN Zi-peng, CHAI Zhao-yun, SUN Hao-cheng, LI Tian-yu, LIU Xin-yu, DUAN Bi-ying. Post-peak fracture-bearing characteristics and fragmentation distribution of sandy mudstone [J]. Rock and Soil Mechanics, 2023, 44(8): 2369-2380.
[7] YIN Xin-sheng, SHU Ying, LIANG Lu-ju, ZHANG Shi-min, . Stability analysis of shield excavation surface in saturated silt strata considering seepage [J]. Rock and Soil Mechanics, 2023, 44(7): 2005-2016.
[8] LI Man, LIU Xian-shan, PAN Yu-hua, QIAO Shi-hao, HAO Zi-yu, QIAN Lei, LUO Xiao-lei, . Mechanical properties of fractured sandstone after cyclic thermal shock [J]. Rock and Soil Mechanics, 2023, 44(5): 1260-1270.
[9] FAN Jin-yang, TANG Lu-xuan, CHEN Jie, YANG Zhen-yu, JIANG De-yi, . Creep fatigue constitutive model of salt rock based on a hardening parameter [J]. Rock and Soil Mechanics, 2023, 44(5): 1271-1282.
[10] LIU Xin-rong, GUO Xue-yan, XU Bin, ZHOU Xiao-han, ZENG Xi, XIE Ying-kun, WANG Yan, . Investigation on dynamic cumulative damage mechanism of the dangerous rock slope including deteriorated rock mass in hydro-fluctuation belt [J]. Rock and Soil Mechanics, 2023, 44(3): 637-648.
[11] WANG Chun, HU Man-gu, WANG Cheng, . Dynamic damage characteristics and structural model of concentric perforated granite subjected to thermal-hydro-mechanical coupling [J]. Rock and Soil Mechanics, 2023, 44(3): 741-756.
[12] RU Wen-kai, HU Shan-chao, LI Di-yuan, MA Jin-yin, ZHANG Chen-xi, LUO Ping-kuang, GONG Hao, ZHOU Ao-hui . Energy evolution of unloading confining pressure and dissipative energy damage constitutive model of coal-rock combination [J]. Rock and Soil Mechanics, 2023, 44(12): 3448-3458.
[13] SONG Yong-jun, SUN Yin-wei, LI Chen-jing, YANG Hui-min, ZHANG Lei-tao, XIE Li-jun, . Meso-fracture evolution characteristics of freeze-thawed sandstone based on discrete element method simulation [J]. Rock and Soil Mechanics, 2023, 44(12): 3602-3616.
[14] LI Cheng-sheng, KONG Ling-wei, SHU Rong-jun, LIU Zhi-jun, ZHANG Bing-xin, . Meso-structure damage evolution in shear bands of granite residual soil [J]. Rock and Soil Mechanics, 2023, 44(11): 3203-3212.
[15] TANG Yi-ju, HAO Tian-xuan, LIU Jing, LI Fan, ZHAO Li-zhen, WANG Ze-hua, WANG Hao-chang, LIU Xun. Characterization of infrared radiation and fracture evolution during destabilization of coal bodies with different degrees of damage [J]. Rock and Soil Mechanics, 2023, 44(10): 2907-2920.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
[1] GAO Guang-yun, ZHAO Yuan-yi, GAO Meng, YANG Cheng-bin. Improved calculation for lateral dynamic impedance of pile groups in layered soil[J]. , 2010, 31(2): 509 -515 .
[2] SUN Xi-yuan, LUAN Mao-tian, TANG Xiao-wei. Study of horizontal bearing capacity of bucket foundation on saturated soft clay ground[J]. , 2010, 31(2): 667 -672 .
[3] WANG Ming-nian, GUO Jun, LUO Lu-sen, Yu Yu, Yang Jian-min, Tan Zhon. Study of critical buried depth of large cross-section loess tunnel for high speed railway[J]. , 2010, 31(4): 1157 -1162 .
[4] YANG Xiao, CAI Xue-qiong. Vertical vibration of pile in saturated viscoelastic soil layer considering transversal effects[J]. , 2011, 32(6): 1857 -1863 .
[5] MING Hua-jun,FENG Xia-ting,CHEN Bing-rui,ZHANG Chuan-qing. Analysis of rockburst mechanism for deep tunnel based on moment tensor[J]. , 2013, 34(1): 163 -172 .
[6] WANG Jing-lin , ZHENG Ying-ren , CHEN Yu-yao , LI Ke-yu . Discussion on upper-bound method of limit analysis for geotechenical material[J]. , 2003, 24(4): 538 -544 .
[7] LIU Xin , YANG Xiao . Dynamical stiffnesses of a floating pile in horizontal vibration[J]. , 2008, 29(4): 1021 -1026 .
[8] ZHAO Yu , LI Xiao-hong , LU Yi-yu , KANG Yong , CHEN Lu-wang . Lyapunov exponent of surrounding rock system in process of unloading for deep-buried tunnel[J]. , 2008, 29(10): 2871 -2876 .
[9] LI Peng, SU Sheng-rui, WANG Yan-chao, WANG Qi. Research on dynamic response of rock slope with weak layer[J]. , 2013, 34(S1): 365 -370 .
[10] ZHANG Jun-ru, QIU Wen-ge. Numeration analysis and design method research into surrounding rock and lining structural stress of up bamboo-truncating tunnel portal[J]. , 2006, 27(11): 2071 -2075 .