Fracture features of brittle coal under uniaxial and cyclic compression loads

Under the effects of complex geological and stress environments, burst hazards continue to be a major challenge for underground space utilization and deep resources exploration as its occurrence can lead to personnel causalities, equipment damage and structural collapse. Considering the stress path...

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Published inInternational journal of coal science & technology Vol. 10; no. 1; pp. 9 - 13
Main Authors Song, Shikang, Ren, Ting, Dou, Linming, Sun, Jian, Yang, Xiaohan, Tan, Lihai
Format Journal Article
LanguageEnglish
Published Singapore Springer Nature Singapore 01.12.2023
Springer
Springer Nature B.V
SpringerOpen
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ISSN2095-8293
2198-7823
2198-7823
DOI10.1007/s40789-023-00564-x

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Abstract Under the effects of complex geological and stress environments, burst hazards continue to be a major challenge for underground space utilization and deep resources exploration as its occurrence can lead to personnel causalities, equipment damage and structural collapse. Considering the stress path experienced by in-situ coal body, cyclic loading appears in quite various forms for instance shearer cutting, overlying strata breakage, hydro-fracturing and blasting, during tunnel, mining and underground space utilizing process. The stability of the underground coal body subject to periodic loading/unloading stress is extremely important for maintain the function of designed engineering structure for waste storage, safe mining, roadway development, gas recovery, carbon sequestration and so on. The mechanical properties of hard rock subject to cyclic fatigue loads has been intensively investigated by many researchers as the rock burst induced by supercritical loads has long been a safety risk and engineering problems for civil and tunneling engineering under deep overburden. More recently, the mechanical properties of coal samples under cyclic fatigue loads is investigated from the aspect of hysteresis, energy dissipation and irreversible damage as the burst hazards of brittle coal is rising in many countries. However, the crack propagation and fracture pattern of brittle coal need more research to understand the micro mechanism of burst incubation subject to cyclic fatigue loads as brittle coal can store more elastic strain energy and rapidly release the energy when its ultimate strength once reached. This research studied the internal crack status corresponding to different cyclic fatigue loading stage of brittle coal samples. The AE monitoring was applied during the uniaxial and cyclic loading process of brittle coal samples to record the crack intensity of samples at different loading stages. The damage evolution curve corresponding to loading status was then determined. The fracture pattern of coal samples determined by micro-CT scan was observed and discussed. It has been found by this paper that brittle coal of uniaxial compression tests demonstrated sudden failure caused by major splitting fracture while that of cyclic fatigue tests experienced progressive failure with mixture fracture network.
AbstractList Under the effects of complex geological and stress environments, burst hazards continue to be a major challenge for underground space utilization and deep resources exploration as its occurrence can lead to personnel causalities, equipment damage and structural collapse. Considering the stress path experienced by in-situ coal body, cyclic loading appears in quite various forms for instance shearer cutting, overlying strata breakage, hydro-fracturing and blasting, during tunnel, mining and underground space utilizing process. The stability of the underground coal body subject to periodic loading/unloading stress is extremely important for maintain the function of designed engineering structure for waste storage, safe mining, roadway development, gas recovery, carbon sequestration and so on. The mechanical properties of hard rock subject to cyclic fatigue loads has been intensively investigated by many researchers as the rock burst induced by supercritical loads has long been a safety risk and engineering problems for civil and tunneling engineering under deep overburden. More recently, the mechanical properties of coal samples under cyclic fatigue loads is investigated from the aspect of hysteresis, energy dissipation and irreversible damage as the burst hazards of brittle coal is rising in many countries. However, the crack propagation and fracture pattern of brittle coal need more research to understand the micro mechanism of burst incubation subject to cyclic fatigue loads as brittle coal can store more elastic strain energy and rapidly release the energy when its ultimate strength once reached. This research studied the internal crack status corresponding to different cyclic fatigue loading stage of brittle coal samples. The AE monitoring was applied during the uniaxial and cyclic loading process of brittle coal samples to record the crack intensity of samples at different loading stages. The damage evolution curve corresponding to loading status was then determined. The fracture pattern of coal samples determined by micro-CT scan was observed and discussed. It has been found by this paper that brittle coal of uniaxial compression tests demonstrated sudden failure caused by major splitting fracture while that of cyclic fatigue tests experienced progressive failure with mixture fracture network.
Abstract Under the effects of complex geological and stress environments, burst hazards continue to be a major challenge for underground space utilization and deep resources exploration as its occurrence can lead to personnel causalities, equipment damage and structural collapse. Considering the stress path experienced by in-situ coal body, cyclic loading appears in quite various forms for instance shearer cutting, overlying strata breakage, hydro-fracturing and blasting, during tunnel, mining and underground space utilizing process. The stability of the underground coal body subject to periodic loading/unloading stress is extremely important for maintain the function of designed engineering structure for waste storage, safe mining, roadway development, gas recovery, carbon sequestration and so on. The mechanical properties of hard rock subject to cyclic fatigue loads has been intensively investigated by many researchers as the rock burst induced by supercritical loads has long been a safety risk and engineering problems for civil and tunneling engineering under deep overburden. More recently, the mechanical properties of coal samples under cyclic fatigue loads is investigated from the aspect of hysteresis, energy dissipation and irreversible damage as the burst hazards of brittle coal is rising in many countries. However, the crack propagation and fracture pattern of brittle coal need more research to understand the micro mechanism of burst incubation subject to cyclic fatigue loads as brittle coal can store more elastic strain energy and rapidly release the energy when its ultimate strength once reached. This research studied the internal crack status corresponding to different cyclic fatigue loading stage of brittle coal samples. The AE monitoring was applied during the uniaxial and cyclic loading process of brittle coal samples to record the crack intensity of samples at different loading stages. The damage evolution curve corresponding to loading status was then determined. The fracture pattern of coal samples determined by micro-CT scan was observed and discussed. It has been found by this paper that brittle coal of uniaxial compression tests demonstrated sudden failure caused by major splitting fracture while that of cyclic fatigue tests experienced progressive failure with mixture fracture network.
ArticleNumber 9
Audience Academic
Author Song, Shikang
Tan, Lihai
Ren, Ting
Dou, Linming
Yang, Xiaohan
Sun, Jian
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  organization: Shaanxi Zhengtong Coal Industry Co., Ltd
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  surname: Ren
  fullname: Ren, Ting
  organization: School of Civil, Mining and Environmental Engineering, University of Wollongong
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  givenname: Linming
  surname: Dou
  fullname: Dou, Linming
  organization: State Key Laboratory of Coal Resources and Safe Mining, China University of Mining and Technology
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  givenname: Jian
  surname: Sun
  fullname: Sun, Jian
  organization: School of Energy and Safety Engineering, Anhui University of Science and Technology
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  givenname: Xiaohan
  surname: Yang
  fullname: Yang, Xiaohan
  organization: School of Civil Engineering, The University of Queensland
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  givenname: Lihai
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  surname: Tan
  fullname: Tan, Lihai
  email: lt716@uowmail.edu.au
  organization: School of Civil, Mining and Environmental Engineering, University of Wollongong, State Key Laboratory of Coal Resources and Safe Mining, China University of Mining and Technology
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Coal burst
Fracture
Computed tomography
Crack
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Snippet Under the effects of complex geological and stress environments, burst hazards continue to be a major challenge for underground space utilization and deep...
Abstract Under the effects of complex geological and stress environments, burst hazards continue to be a major challenge for underground space utilization and...
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StartPage 9
SubjectTerms Acoustic emission
Blasting
Carbon sequestration
Coal
Coal burst
Computed tomography
Crack
Crack propagation
Discovery and exploration
Energy
Energy dissipation
Fossil Fuels (incl. Carbon Capture)
Fracture
Geotechnical Engineering & Applied Earth Sciences
ISMSSE
Mechanical properties
Mineral industry
Mineral Resources
Mining industry
Outer space
Overburden
Resource exploration
Rocks
Safety engineering
Waste storage
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Title Fracture features of brittle coal under uniaxial and cyclic compression loads
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