Geofluids

Disaster Mechanisms Linked to the Role of Fluids in Geotechnical Engineering 2022


Publishing date
01 Dec 2022
Status
Published
Submission deadline
12 Aug 2022

Lead Editor

1Xi’an University of Technology, Xi’an, China

2Imperial College London, London, UK

3Southern university of science and technology, Shenzhen, China

4Xuzhou University of Technology, Xuzhou, China


Disaster Mechanisms Linked to the Role of Fluids in Geotechnical Engineering 2022

Description

At present, the engineering challenges of deep rock or soil have attracted wide attention. The stability and safety problems of deep rock or soil are encountered in the fields of coal, oil, national defence and nuclear waste storage. The primary task to be solved in deep rock engineering is how to ensure production safety in complex deep geological conditions. Under the conditions of high stress, temperature and water pressure (or gas pressure), a large number of disastrous accidents such as water flooding, water inrush, roadway collapse, gas outburst and gas explosion have taken place, causing a great threat to the health and safety of field workers. It is very important to correctly understand the mechanism of these disasters, which are reflected by the behaviour of geotechnical materials and fluids in the process of deep excavation.

The migration of water and gas in geotechnical materials during underground excavation is a complex problem, involving multi-phase (solid, liquid and gas), multi-scale (nano to macro) and multi-field coupling (mechanical, thermal, chemical, water, gas, etc.). For example, high temperature can change the mechanical properties of rock due to thermal stress. Creep is also sensitive to high temperature and high osmotic pressure. In addition, during the exploitation of deep resources (coalbed methane, shale gas and geothermal), fractures are usually artificially induced in the reservoir in order to enhance production efficiency. Rock damage or crack propagation in the reservoir may complicate the problem. Due to complex affecting factors in the environment of high ground stress, high temperature and high seepage pressure, the mechanism of water or gas flow and deformation of geotechnical materials induced by excavation disturbance are not fully clear. Further research is needed in order to take appropriate measures to prevent hazards induced by water or gas flow.

The aim of this Special Issue is to collate original research with a focus on some of the current challenges faced by academic and industrial researchers in this field. We welcome original research and review papers on all relevant topics, especially theoretical development, analytical methods, numerical methods, geotechnical tests, field investigations and case studies.

Potential topics include but are not limited to the following:

  • Long term stability analysis of deep surrounding rock
  • Mechanism of multi-field and multi-phase flow under deep disturbance
  • Stability and seepage field analysis of surrounding rock of underground oil storage
  • Roadway support method in deep multi-field coupling environment
  • Stability analysis of surrounding rock of deep tunnel in water-rich area
  • Mechanism of gas dynamic disaster in coal mining
  • Water inrush mechanism of deep and long tunnel
  • Fracture mechanism of surrounding rock in deep excavation
  • Gas migration mechanism and gas drainage technology
  • Exploitation of geothermal resources

Articles

  • Special Issue
  • - Volume 2022
  • - Article ID 3903370
  • - Research Article

Failure Characteristics and Deformation Control Methods of the Bottom Drum of Roadways during Repeated Mining of Multiple Coal Seams

Changzheng Zhao | Shenggen Cao | ... | Xingyao Wang
  • Special Issue
  • - Volume 2022
  • - Article ID 8170585
  • - Research Article

Prediction of Ultimate Antifloating Force of Bored Piles in Urban Road Crossing Overpass

Zhang Minxia | Fan Kaijun | ... | Chen Chen
  • Special Issue
  • - Volume 2022
  • - Article ID 1932642
  • - Research Article

Experimental Research on Fracture Characteristics of Reactive Powder Concrete in Different Volume Content of Steel Fiber

Wenzhen Wang | Haixiao Lin | ... | Menglong Zhou
  • Special Issue
  • - Volume 2022
  • - Article ID 2033679
  • - Research Article

Experimental Study on Dynamic Response and Damage Evolution of Coal under Shocks by Multiple High-Pressure Air Blasting

Shaoyang Yan | Xiaolin Yang | ... | Mengfei Yu
  • Special Issue
  • - Volume 2022
  • - Article ID 7237049
  • - Research Article

Effect of Carbon Nanotube Size on Electrical Properties of Cement Mortar under Different Temperatures and Water Content

Yanwen Liu | Xu Cheng
  • Special Issue
  • - Volume 2022
  • - Article ID 2663551
  • - Research Article

Dynamic Simulation and Analysis of Large-Scale Debris Flow Field

Zongyuan Ma | Jianqiang Liu
  • Special Issue
  • - Volume 2022
  • - Article ID 2798281
  • - Research Article

The Effects of Salt-Lake Salt Solution on the Strength of Expansive Soil

Shaowei Zhang | Dongdong Li
  • Special Issue
  • - Volume 2022
  • - Article ID 3236515
  • - Research Article

Study on Rheological Mechanism of Cement-Coal Gangue Cementitious Material (CGCM) Slurry

Xuyang Shi | Qingxiang Cai | ... | Ming Li
Geofluids
Publishing Collaboration
More info
Wiley Hindawi logo
 Journal metrics
See full report
Acceptance rate24%
Submission to final decision146 days
Acceptance to publication27 days
CiteScore2.300
Journal Citation Indicator0.600
Impact Factor1.7
 Submit Evaluate your manuscript with the free Manuscript Language Checker

We have begun to integrate the 200+ Hindawi journals into Wiley’s journal portfolio. You can find out more about how this benefits our journal communities on our FAQ.