Title of article
Interaction between One Internal Hole and Two Neighboring Joints under Uniaxial Compression using an Experimental Test and a Numerical Simulation
Author/Authors
Sarfarazi, Vahab Academic Member - Department of Mining Engineering - Hamedan University of Technology, Hamedan, Iran , Asgari, Kaveh Research Scholar - Department of Mining Engineering - Shahid Bahonar University of Kerman, Kerman, Iran , Mohamadi Bolban Abad, Shadman Research Scholar - Hamedan University of Technology, Hamedan, Iran
Pages
14
From page
407
To page
420
Abstract
The interaction between an internal hole and two surrounded joints under a uniaxial
compression are examined using the experimental and discrete element procedures.
Inside the concrete sample, two notches and an internal hole are created. The joint
angle change from 0° to 90° with an increment of 30°. The distances between the joint
and the internal hole are 2 cm and 3 cm. Also the numerical models are provided. The
joint angle change from 0° to 90° with an increment of 15°. The distances between
the joint and the internal hole are 2 cm, 3 cm, and 4 cm. The compressive strength is
7.2 MPa. The rate of loading is 0.005 mm/s. The experiment indicates that the failure
process is significantly dependent on the notch angle and the joint distance from the
hole. The pattern of fracture and mechanism of failure of joints affect the shear
strengths of the samples. The models with joint angles of 30° and 60° have a less
compressive strength since the pure tensile failure occurs in these configurations. The
model strength decreases with decrease in the join spacing. In fact, in the case that the
joint spacing is 2 cm, the interaction between the hole and the neighboring joint is so
strong. Consequently, the compressive strength is declined. In both approaches of the
numerical simulation and experimental methods, the pattern and strength of failure are
identical.
Keywords
Compressive test , Joint angle , Joint distance , Hole , PFC2D
Journal title
Journal of Mining and Environment
Serial Year
2022
Record number
2733375
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