Geofluids

Mechanism and Control of Geological Disasters in Deep Engineering Under High Temperature, Ground Stress and Water Pressure 2021


Publishing date
01 Sep 2022
Status
Closed
Submission deadline
22 Apr 2022

Lead Editor

1Shandong University of Science and Technology, Qingdao, China

2CCTEG Coal Mining Research Institute, Beijing, China

3Anhui University of Science and Technology, Huainan, China

This issue is now closed for submissions.

Mechanism and Control of Geological Disasters in Deep Engineering Under High Temperature, Ground Stress and Water Pressure 2021

This issue is now closed for submissions.

Description

As mining depth increases for coal and other mineral resources, the stress of coal-rock mass also increases. The deep underground environment that coal-rock mass exists in has the typical characteristics of high water pressure, high ground pressure, and high ground temperature. In addition, coal mining often causes additional characteristics, such as strong disturbance and strong ageing. These factors are causing an increasing number of serious underground dynamic disasters. In recent years, the construction of railways, roads, and water conservancy facilities has been carried out in high-altitude areas, such as China's Sichuan-Tibet railway (the highest point is 5,100 metres above sea level) and the water diversion project in central Yunnan province. There are numerous active fault zones and other geological hazards, including earthquakes, that can be seen in these areas. At the same time, high in-situ stress in long tunnels, high seepage pressure of groundwater, high in-situ temperature, and multi-field coupling of dynamic loads are all leading to new characteristic scientific phenomena in the engineering response of deep rock mass.

For example, high temperature can change the mechanical properties of rock, such as the softening of hard rock due to the effects of thermal stress. Soft rock, such as mudstone and shale, is easily destroyed by accelerated creep under extremely high in-situ stress. Creep is also sensitive to high underground temperature and high permeability pressure. Moreover, dynamic water pressure generated by dynamic action has a significant influence on rock mass hydraulic fracturing and seepage deformation. Multi-field coupling of high ground stress, high ground temperature, high seepage pressure, and dynamic load are all factors that can lead to water inrush, large deformation of soft rock, and rock burst disaster, the mechanisms of which are all important in underground engineering. These factors will cause unprecedented technical challenges, meaning that disaster prevention and control methods need to be improved as soon as possible to ensure the safety of engineering and construction projects.

Underground engineering continues to progress at deeper levels with the challenging and characteristic environment of high temperature, high ground stress, and high water pressure. In this Special Issue, we focus on the latest and most challenging research topics in the mechanisms and control of geological disasters in deep engineering under coupled high temperature, high ground stress, and high water pressure. We invite investigators to contribute to this Special Issue with original research and review articles on the mechanisms and control of geological disasters as well as their applications in solving engineering problems.

Potential topics include but are not limited to the following:

  • Nonlinear mechanical characteristics and aging characteristics of deep rock mass
  • Macroscopic and microscopic damage behaviour of deep rock mass
  • Multi-field coupling failure mechanisms of deep rock mass
  • Solid-liquid-gas multiphase coupling effect of deep rock mass
  • Rock burst mechanisms and geological models under extremely high stress
  • Large deformation mechanisms and models of soft rock under extremely high stress
  • Mechanisms and processes of water gushing under high stress and high water pressure
  • Prediction methods and active control technology for deep geological disasters
  • Deterioration mechanisms of structure under high temperature and high pressure and optimal design of waterproofing and drainage
  • Dynamic constitutive model for deformation and failure of deep rock mass
  • Distribution and evolution characteristics of mining-induced stress in surrounding rock in deep roadway
  • Instability mechanism of roadway surrounding rock structure under superposition of high in-situ stress and strong mining
  • Research and application of cooperative anchoring mechanism of surrounding rock in deep roadways
  • Overburden structure and mining-induced stress evolution mechanism of ultra-long working face in one kilometer deep mines
  • Spatial structure evolution and intelligent control technology of overburden in one kilometer deep mines

Articles

  • Special Issue
  • - Volume 2021
  • - Article ID 4673152
  • - Research Article

Research on Optimization of Coal Pressure Relief Borehole Parameters under High-Stress Conditions

Heng Zhang | Tie Li | ... | Haiyang Yi
  • Special Issue
  • - Volume 2021
  • - Article ID 3181697
  • - Research Article

Mechanical Properties and Damage Behavior of Rock-Coal-Rock Combined Samples under Coupled Static and Dynamic Loads

Jinzheng Bai | Linming Dou | ... | Yanjiang Chai
  • Special Issue
  • - Volume 2021
  • - Article ID 3095690
  • - Research Article

An Analysis of the Impact of Deviatoric Stress and Spherical Stress on the Stability of Surrounding Rocks in Roadway

Liu Rui | Zhu Quanjie
  • Special Issue
  • - Volume 2021
  • - Article ID 4336163
  • - Review Article

The Integrated Development Strategy of Coastal Industrial Areas and City Based on Underground Space Development

Feng Shao | Pingyang Shi | ... | Ce Dong
  • Special Issue
  • - Volume 2021
  • - Article ID 7374363
  • - Research Article

Numerical Simulation on the Progressive Failure Processes of Foundation Pit Excavation Based on a New Particle Failure Method

Guojin Zhu | Shuyang Yu | ... | Yu Wu
  • Special Issue
  • - Volume 2021
  • - Article ID 4141236
  • - Research Article

Modified Stochastic Petri Net-Based Modeling and Optimization of Emergency Rescue Processes during Coal Mine Accidents

Xiao Li | Yongkui Shi | ... | Wenquan Zhang
  • Special Issue
  • - Volume 2021
  • - Article ID 5604642
  • - Research Article

An Experimental Research on Surrounding Rock Unloading during Solid Coal Roadway Excavation

Hongjun Guo | Ming Ji | ... | Jingjing Chen
  • Special Issue
  • - Volume 2021
  • - Article ID 5714547
  • - Research Article

Characterization of Discontinuity and Mechanical Anisotropy of Shale Based on Continuum Damage Mechanics

Qinglin Shan | Peng Yan | ... | Sunhao Zhang
  • Special Issue
  • - Volume 2021
  • - Article ID 4092242
  • - Research Article

Investigation on the Movement and Fracture Characteristics of an Extra-Thick Hard Roof during Longwall Panel Extraction in the Yima Mining Area, China

Hongwei Wang | Daixin Deng | ... | Yaodong Jiang
  • Special Issue
  • - Volume 2021
  • - Article ID 9083547
  • - Research Article

Operating Environment Assessment of the Coalface in Underground Coal Mining Based on Analytic Hierarchy Process (AHP) and Matter-Element Theory (MET)

Jianghui He | Shiliang Liu | ... | Qiqing Wang
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Acceptance rate29%
Submission to final decision141 days
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CiteScore2.300
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