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- W4249793513 abstract "<strong class=journal-contentHeaderColor>Abstract.</strong> Construction of cavities in the subsurface is always accompanied by excavation damage. Especially in the context of deep geological nuclear waste disposal, the evolving excavation damaged zone (EDZ) in the near field of emplacement tunnels is of utmost importance concerning safety aspects. As the EDZ differs from the intact host rock due to enhanced hydraulic transmissivity and altered geomechanical behavior, reasonable and location-dependent input data on hydraulic and mechanical properties are crucial. Thus, in this study, a hydromechanical characterization of an EDZ in the Mont Terri underground rock laboratory, Switzerland, was performed using three different handheld devices: (1) air permeameter, (2) microscopic camera and (3) needle penetrometer. The discrete fracture network (DFN), consisting of artificially induced unloading joints and reactivated natural discontinuities, was investigated by a portable air permeameter and combined microscopic imaging with automatic evaluation. Geomechanical and geophysical characterization of the claystone was conducted based on needle penetrometer testing at the exposed rock surface. Within the EDZ, permeable fractures with a mean hydraulic aperture of 84â<span class=inline-formula>±</span>â23â<span class=inline-formula>µ</span>m are present. Under open conditions, self-sealing of fractures is suppressed, and cyclic long-term fracture aperture oscillations in combination with closure resulting from convergence processes is observed. Based on measured needle penetration indices, a uniaxial compressive strength of 30â<span class=inline-formula>±</span>â13âMPa (normal to bedding) and 18â<span class=inline-formula>±</span>â8âMPa (parallel to bedding) was determined. Enhanced strength and stiffness are directly related to near-surface desaturation of the claystone and a sharp decrease in water content from 6.6âwtâ% to 3.7âwtâ%. The presented methodological approach is particularly suitable for time-dependent monitoring of EDZs since measurements are nondestructive and do not change the actual state of the rock mass. This allows for a spatially resolved investigation of hydraulic and mechanical fracture apertures, fracture surface roughness, and physico-mechanical rock parameters and their intra-facies variability." @default.
- W4249793513 created "2022-05-12" @default.
- W4249793513 date "2021-03-11" @default.
- W4249793513 modified "2023-10-03" @default.
- W4249793513 title "Comment on se-2021-4" @default.
- W4249793513 doi "https://doi.org/10.5194/se-2021-4-rc2" @default.
- W4249793513 hasPublicationYear "2021" @default.
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