Geofluids

Advances in Rock Mass Structural Geomechanics Related to Hydro-Mechanical Effects


Publishing date
01 Sep 2021
Status
Published
Submission deadline
14 May 2021

Lead Editor

1University of Science and Technology, Beijing, China

2The University of Western Australia, Perth, Australia

3TU Bergakademie Freiberg, Freiberg, Germany


Advances in Rock Mass Structural Geomechanics Related to Hydro-Mechanical Effects

Description

Rock mass often consists of different types of discontinuous structures, such as cleavages, foliations, beddings, joints and faults, etc. The existence of those discontinuities will impose significant effects on geomechanical properties of rock mass. As a consequence, the hydro-mechanical responses of rock mass are certainly structural-controlled. Rock mass with different kinds of structures usually exhibits distinct responses with respect to fluid flow. Fluid flow can further lead to the deterioration of rock structures, which may finally result in serious geohazards, e.g., landslides, debris flow, rock collapses, water inrush, mud inrush, etc, and in turn the structural changes of rock mass can also impact hydraulic properties. As a result, it is crucial to investigate the geomechanical behaviours of rock mass by thoroughly considering the hydro-mechanical effects.

In recent decades, the hotspots for hydro-mechanical research concerning the rock mass structure include: structural deterioration of rock mass, such as the coupling effects of flow and stress fields on rock geo-mechanics; deep resource and energy development related to fluid flow in fracture networks; stress disturbance of rock mass subjected to nonlinear flow through complex fracture networks; and effects of freeze-thaw cycling on geomechanical behaviours for naturally fractured rock mass.

This Special Issue aims to collect recent advances in rock mass structural geomechanics related to hydro-mechanical effects. Articles should provide meaningful approaches and experiences to address the above-mentioned challenges in both scientific and in-situ scales. We invite submissions of comprehensive review papers and original articles.

Potential topics include but are not limited to the following:

  • Stress-flow behaviours in structural rock mass
  • Effects of macroscopic and mesoscopic rock structures on flow paths
  • New apparatus and methods for characterization of rock hydromechanical behaviours
  • Advanced numerical simulation developments for the prediction of the effect of rock structures on flow pattern
  • Effect of freeze-thaw treatment on rock geomechanical properties
  • Coupled flow-disturbed stress on rock structure deterioration effects
  • Coupled freeze-thaw-mechanical loads on rock damage modelling
  • Frost heaving force evolution in fracture networks
  • Unsaturated flow through rock fractures
  • Predictive models for permeability of naturally fractured rock mass

Articles

  • Special Issue
  • - Volume 2021
  • - Article ID 5575376
  • - Research Article

The Elastoplastic Solutions of Deep Buried Roadway Based on the Generalized 3D Hoek-Brown Strength Criterion considering Strain-Softening Properties

Rui Wang | Jian-biao Bai | ... | Jun Xu
  • Special Issue
  • - Volume 2021
  • - Article ID 5585392
  • - Research Article

Experimental Investigation into Compressive Behaviour and Preconsolidation Pressure of Structured Loess at Different Moisture Contents

Yali Xu | Panpan Guo | ... | Kang Cheng
  • Special Issue
  • - Volume 2021
  • - Article ID 5516040
  • - Research Article

Investigation on Nonuniform Extension of Hydraulic Fracture in Shale Gas Formation

Zhiheng Zhao | Youcheng Zheng | ... | Yi Song
  • Special Issue
  • - Volume 2021
  • - Article ID 5583940
  • - Research Article

Research on the Deformation Law of Jointed Surrounding Rock during Tunnel Excavation Based on Hydromechanical Coupling

Yan Wang | Mingfei Li
  • Special Issue
  • - Volume 2021
  • - Article ID 5548817
  • - Research Article

Predicting Response of Constructed Tunnel to Adjacent Excavation with Dewatering

Panpan Guo | Feifei Liu | ... | Xiaonan Gong
  • Special Issue
  • - Volume 2021
  • - Article ID 5562149
  • - Research Article

Numerical Simulation on Mesoscale Mechanism of Seepage in Coal Fractures by Fluid-Sloid Coupling Method

Kai Si | Ruidong Peng | ... | Jianyong Zhang
  • Special Issue
  • - Volume 2021
  • - Article ID 5559052
  • - Research Article

Laboratory Model Tests on Flow Erosion Failure Mechanism of a Slope Consisting of Anqing Group Clay Gravel Layer

Kang Huang | Haipeng Duan | ... | Zhangjun Dai
  • Special Issue
  • - Volume 2021
  • - Article ID 5551699
  • - Research Article

Model Test Study on Dynamic Response of Expressway Plastic-Reinforced Earth Embankment under Earthquake

Xue Han | Pengyue Ji | ... | Guangsen Mu
  • Special Issue
  • - Volume 2021
  • - Article ID 5580185
  • - Research Article

Experimental Investigation of Permeability Evolution on Sandstone in Triaxial and Long-Term Dissolution Experiment

Ji Shi | Jianhua Zhang | ... | Gang Huang
  • Special Issue
  • - Volume 2021
  • - Article ID 5592672
  • - Research Article

Effect of Bedding Structure on the Energy Dissipation Characteristics of Dynamic Tensile Fracture for Water-Saturated Coal

Shuang Gong | Lei Zhou | ... | Wen Wang
Geofluids
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Acceptance rate24%
Submission to final decision146 days
Acceptance to publication27 days
CiteScore2.300
Journal Citation Indicator0.600
Impact Factor1.7
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