Evolution Mechanisms of Three-Dimensional Fracture Fields in Coal Under Uniaxial Cyclic Loading and Unloading

In deep underground engineering applications, such as coal mining, coal–rock masses are frequently subjected to repeated loading and unloading conditions. Understanding the evolution mechanisms of their internal three-dimensional fracture fields has become a critical scientific challenge. This study...

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Main Authors: Jiankun Xu, Rui Zhou, Danyang Xi, Yichao Lin, Xibin Li
Format: Article
Language:English
Published: MDPI AG 2025-02-01
Series:Applied Sciences
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Online Access:https://www.mdpi.com/2076-3417/15/5/2556
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author Jiankun Xu
Rui Zhou
Danyang Xi
Yichao Lin
Xibin Li
author_facet Jiankun Xu
Rui Zhou
Danyang Xi
Yichao Lin
Xibin Li
author_sort Jiankun Xu
collection DOAJ
description In deep underground engineering applications, such as coal mining, coal–rock masses are frequently subjected to repeated loading and unloading conditions. Understanding the evolution mechanisms of their internal three-dimensional fracture fields has become a critical scientific challenge. This study utilized X-ray Microscopy (XRM) to observe changes in internal fractures of coal samples after each loading–unloading cycle, reconstructing the internal fractures and mineral particles. Scanning Electron Microscopy (SEM) and Energy Dispersive Spectroscopy (EDS) were employed to analyze the surface morphology and mineral composition of coal sample cross-sections. The experimental results revealed that: (1) With an increasing number of loading–unloading cycles, the samples’ volumes initially decreased and then expanded, with the expansion accompanied by rapid propagation of CT-scale fractures; (2) During the linear elastic phase, micro-fractures developed progressively but remained small, while sustained stress caused these fractures to interconnect, eventually leading to macroscopic failure; (3) Hard mineral particles within the coal samples, such as iron ore, acted as barriers to crack propagation. These findings indicate that the evolution characteristics of the internal fracture fields in coal–rock masses are influenced by stress state, pre-existing fractures, and the distribution of mineral particles.
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spelling doaj-art-561c3ad68fc844c784ee1d4e644fb4bd2025-08-20T02:52:48ZengMDPI AGApplied Sciences2076-34172025-02-01155255610.3390/app15052556Evolution Mechanisms of Three-Dimensional Fracture Fields in Coal Under Uniaxial Cyclic Loading and UnloadingJiankun Xu0Rui Zhou1Danyang Xi2Yichao Lin3Xibin Li4School of Safety Engineering, China University of Mining and Technology, Xuzhou 221116, ChinaAdvanced Analysis & Computation Center, China University of Mining and Technology, Xuzhou 221116, ChinaSchool of Resources and Earth Science, China University of Mining and Technology, Xuzhou 221116, ChinaSchool of Safety Engineering, China University of Mining and Technology, Xuzhou 221116, ChinaShandong Guoxing Smartech Co., Ltd., Yantai 264001, ChinaIn deep underground engineering applications, such as coal mining, coal–rock masses are frequently subjected to repeated loading and unloading conditions. Understanding the evolution mechanisms of their internal three-dimensional fracture fields has become a critical scientific challenge. This study utilized X-ray Microscopy (XRM) to observe changes in internal fractures of coal samples after each loading–unloading cycle, reconstructing the internal fractures and mineral particles. Scanning Electron Microscopy (SEM) and Energy Dispersive Spectroscopy (EDS) were employed to analyze the surface morphology and mineral composition of coal sample cross-sections. The experimental results revealed that: (1) With an increasing number of loading–unloading cycles, the samples’ volumes initially decreased and then expanded, with the expansion accompanied by rapid propagation of CT-scale fractures; (2) During the linear elastic phase, micro-fractures developed progressively but remained small, while sustained stress caused these fractures to interconnect, eventually leading to macroscopic failure; (3) Hard mineral particles within the coal samples, such as iron ore, acted as barriers to crack propagation. These findings indicate that the evolution characteristics of the internal fracture fields in coal–rock masses are influenced by stress state, pre-existing fractures, and the distribution of mineral particles.https://www.mdpi.com/2076-3417/15/5/2556coalfracture field evolutionX-ray microscopy
spellingShingle Jiankun Xu
Rui Zhou
Danyang Xi
Yichao Lin
Xibin Li
Evolution Mechanisms of Three-Dimensional Fracture Fields in Coal Under Uniaxial Cyclic Loading and Unloading
Applied Sciences
coal
fracture field evolution
X-ray microscopy
title Evolution Mechanisms of Three-Dimensional Fracture Fields in Coal Under Uniaxial Cyclic Loading and Unloading
title_full Evolution Mechanisms of Three-Dimensional Fracture Fields in Coal Under Uniaxial Cyclic Loading and Unloading
title_fullStr Evolution Mechanisms of Three-Dimensional Fracture Fields in Coal Under Uniaxial Cyclic Loading and Unloading
title_full_unstemmed Evolution Mechanisms of Three-Dimensional Fracture Fields in Coal Under Uniaxial Cyclic Loading and Unloading
title_short Evolution Mechanisms of Three-Dimensional Fracture Fields in Coal Under Uniaxial Cyclic Loading and Unloading
title_sort evolution mechanisms of three dimensional fracture fields in coal under uniaxial cyclic loading and unloading
topic coal
fracture field evolution
X-ray microscopy
url https://www.mdpi.com/2076-3417/15/5/2556
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AT ruizhou evolutionmechanismsofthreedimensionalfracturefieldsincoalunderuniaxialcyclicloadingandunloading
AT danyangxi evolutionmechanismsofthreedimensionalfracturefieldsincoalunderuniaxialcyclicloadingandunloading
AT yichaolin evolutionmechanismsofthreedimensionalfracturefieldsincoalunderuniaxialcyclicloadingandunloading
AT xibinli evolutionmechanismsofthreedimensionalfracturefieldsincoalunderuniaxialcyclicloadingandunloading