Underground Rock Dissolution and Geomechanical Issues

被引:0
作者
Farid Laouafa
Jianwei Guo
Michel Quintard
机构
[1] National Institute for Industrial Environment and Risks (INERIS),School of Mechanics and Engineering
[2] Southwest Jiaotong University,undefined
[3] Université de Toulouse,undefined
[4] INPT,undefined
[5] UPS,undefined
[6] IMFT (Institut de Mécanique des Fluides de Toulouse),undefined
[7] CNRS,undefined
[8] IMFT,undefined
来源
Rock Mechanics and Rock Engineering | 2021年 / 54卷
关键词
Dissolution; Diffuse interface method; Gypsum; Upscaling; Mining; Subsidence; Stability;
D O I
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中图分类号
学科分类号
摘要
Many soluble rocks will dissolve when in contact with fluid such as water. This transformation of rock solid into flowing fluid may trigger the creation of cavities which may further lead to either smooth subsidence or sudden collapse of land surface. Dissolution phenomenon can be of natural or human origin. This paper deals with the problem of the dissolution of underground soluble rocks and the geomechanical consequences such as subsidence, sinkholes and underground collapse. In this paper, rock dissolution and the induced underground cavities are computed using a Diffuse Interface Model, which does not require to follow interfaces explicitly. We describe briefly the mathematical and physical framework for the dissolution model. We first explain the transition (upscaling) of a multiphysics problem formulated at the microscopic (pore-) scale level to the macroscopic (Darcy-) scale level. Rock material considered in this paper is gypsum, despite that the developed method is also suitable for over soluble rocks (e.g., limestone, Halite). The second part of this paper is devoted to a set of problems dealing with mechanical response of the rock mass in connection with the dissolution process. We discuss the subsidence induced by the dissolution of one or more gypsum lenses, the stability of the covering, and finally the failure of a gypsum pillar in an abandoned quarry. These examples, while they may involve rather theoretical hypotheses, have the virtue of showing the relevance of the method as well as the very diverse issues that it can treat.
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页码:3423 / 3445
页数:22
相关论文
共 101 条
[1]  
Al-Khdheeawi EA(2017)Impact of reservoir wettability and heterogeneity on CO Int J Greenh Gas Control 58 142-158
[2]  
Vialle S(2017)-plume migration and trapping capacity Greenh Gas Sci Technol 7 328-338
[3]  
Barifcani A(2017)Influence of CO Energy Procedia 114 4357-4365
[4]  
Sarmadivaleh M(2018)-wettability on CO Int J Greenh Gas Control 68 216-229
[5]  
Iglauer S(1998) migration and trapping capacity in deep saline aquifers Annu Rev Fluid Mech 30 139-165
[6]  
Al-Khdheeawi EA(2000)Influence of rock wettability on CO Environ Geol 40 135-152
[7]  
Vialle S(2019) migration and storage capacity in deep saline aquifers Rock Mech Rock Eng 52 2917-2934
[8]  
Barifcani A(1947)Effect of wettability heterogeneity and reservoir temperature on CO Appl Sci Res 1 27-34
[9]  
Sarmadivaleh M(1993) storage efficiency in deep saline aquifers J Struct Geol 15 1257-1271
[10]  
Iglauer S(2008)Diffuse-interface methods in fluid mechanics Rock Mech Rock Eng 41 377-401