Experimental and simulation researches of loaded stress and gas environment on dynamics properties of gas-bearing coal during impact failure process

被引:0
作者
Xiangguo Kong
Mengzhao Zhan
Yuchu Cai
Chaolin Zhang
Enyuan Wang
Shugang Li
Songrui Yang
Di He
机构
[1] Xi’an University of Science and Technology,State Key Laboratory of Green and Low
[2] Xi’an University of Science and Technology,carbon Development of Tar
[3] Ministry of Education of China,rich Coal in Western China
[4] Xi’an University of Science and Technology,College of Safety Science and Engineering
[5] Key Laboratory of Gas and Fire Control for Coal Mines (China University of Mining and Technology),Key Laboratory of Western Mine and Hazard Prevention
[6] Ministry of Education,School of Chemistry and Chemical Engineering
来源
Bulletin of Engineering Geology and the Environment | 2024年 / 83卷
关键词
Gas-bearing coal; Mechanical properties; Loaded stress; Gas environment; Numerical simulation; Strain rates;
D O I
暂无
中图分类号
学科分类号
摘要
The engineering activities of deep stratigraphic resources development and space utilization are often subjected to complex stress conditions. In terms of gas-bearing coal resource mining, the dynamic mechanical properties of coal at complex loaded stress and gas environment were researched in this paper. Through the split Hopkinson pressure bar (SHPB), the dynamics experiments were performed, in which the factors of axial static load, circumferential confining pressure, internal gas pressure, and outside impact load were considered. Based on the stress and strain results of gas-bearing coal, the dynamic compressive strength and peak failure strain characteristics with strain rates were obtained. Under different loaded conditions, both dynamic compressive strength and peak failure strain added linearly along with strain rates increasing. In fact, high strain rates were the results of comprehensive loading conditions, so the effects of them to coal mechanical properties were discussed. And the improved dynamic material model of gas-bearing coal at high strain rates was proposed, which considered pre-damage of static load, hardening effects of strain rate, and weakening role of gas. Through using this model in numerical simulation, the plastic deformation and stress distribution of coal specimens subjected to impact failure were researched, which verified the results of dynamics experiments. Dynamics achievements of gas-bearing coal at complex loaded environment will provide guides for disaster prevention and promote green mining.
引用
收藏
相关论文
共 224 条
[1]  
Basu A(2013)Rock failure modes under uniaxial compression, Brazilian, and point load tests Bull Eng Geol Env 72 457-475
[2]  
Mishra DA(2014)In-situ rock spalling strength near excavation boundaries Rock Mech Rock Eng 47 659-675
[3]  
Roychowdhury K(2021)Critical damage value of AZ31B magnesium alloy with different temperatures and strain rates Rare Metals 40 6-469
[4]  
Cai M(2020)Influence of the porosity on the uniaxial compressive strength of sandstone samples Proc Struct Int 25 465-2050028
[5]  
Kaiser PK(2020)Study on coal fractography under dynamic impact loading based on multifractal method Fractals 28 2050006-211
[6]  
Dong JR(2018)Effects of strain rate on the mechanical and fracturing behaviors of rock-like specimens containing two unparallel fissures under uniaxial compression Soil Dyn Earthq Eng 110 195-938
[7]  
Zhang DF(2021)Effects of dynamic strain rate on the energy dissipation and fragment characteristics of cross-fissured rocks Int J Rock Mech Min Sci 138 104600-1313
[8]  
Dong YF(2004)Combined effects of increasing temperature and confining pressure on the fracture toughness of clay bearing rocks Int J Rock Mech Min 41 927-219
[9]  
Eremin M(2022)Experimental study on the deformation behaviour, energy evolution law and failure mechanism of tectonic coal subjected to cyclic loads Int J Min Sci Technol 32 1301-806
[10]  
Feng JJ(2019)Dynamic triaxial compression tests on sandstone at high strain rates and low confining pressures with split hopkinson pressure bar - sciencedirect Int J Rock Mech Min Sci 113 211-12