Numerical Modeling of a Punch Penetration Test Using the Discrete Element Method

Understanding the brittleness of rock has a crucial importance in rock engineering applications such as the mechanical excavation of rock. In this study, numerical modeling of a punch penetration test is performed using the Discrete Element Method (DEM). The Peak Strength Index (PSI) as a function o...

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Main Authors: Basirat Rouhollah, Hamidi Jafar Khademi
Format: Article
Language:English
Published: Sciendo 2020-06-01
Series:Slovak Journal of Civil Engineering
Subjects:
dem
Online Access:http://www.degruyter.com/view/j/sjce.2020.28.issue-2/sjce-2020-0008/sjce-2020-0008.xml?format=INT
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spelling doaj-74ff5c5ac1ec489689aceeb64d0d4c2b2020-11-25T01:29:49ZengSciendoSlovak Journal of Civil Engineering1338-39732020-06-012821710.2478/sjce-2020-0008sjce-2020-0008Numerical Modeling of a Punch Penetration Test Using the Discrete Element MethodBasirat Rouhollah0Hamidi Jafar Khademi1Faculty of Engineering, Tarbiat Modares University, Tehran, IranFaculty of Engineering, Tarbiat Modares University, Tehran, IranUnderstanding the brittleness of rock has a crucial importance in rock engineering applications such as the mechanical excavation of rock. In this study, numerical modeling of a punch penetration test is performed using the Discrete Element Method (DEM). The Peak Strength Index (PSI) as a function of the brittleness index was calculated using the axial load and a penetration graph obtained from numerical models. In the first step, the numerical model was verified by experimental results. The results obtained from the numerical modeling showed a good agreement with those obtained from the experimental tests. The propagation path was also simulated using Voronoi meshing. The fracture was created under the indenter in the first step, and then radial fractures were propagated. The effects of confining pressure and strength parameters on the PSI were subsequently investigated. The numerical results showed that the PSI increases with enhancing the confining pressure and the strength parameter of the rock, including cohesion and the friction angle. A new relationship between the strength parameters and PSI was also introduced based on two variable regressions of the numerical results.http://www.degruyter.com/view/j/sjce.2020.28.issue-2/sjce-2020-0008/sjce-2020-0008.xml?format=INTpunchpenetrationtestindentation testpeak slope indexbrittlenessdem
collection DOAJ
language English
format Article
sources DOAJ
author Basirat Rouhollah
Hamidi Jafar Khademi
spellingShingle Basirat Rouhollah
Hamidi Jafar Khademi
Numerical Modeling of a Punch Penetration Test Using the Discrete Element Method
Slovak Journal of Civil Engineering
punchpenetrationtest
indentation test
peak slope index
brittleness
dem
author_facet Basirat Rouhollah
Hamidi Jafar Khademi
author_sort Basirat Rouhollah
title Numerical Modeling of a Punch Penetration Test Using the Discrete Element Method
title_short Numerical Modeling of a Punch Penetration Test Using the Discrete Element Method
title_full Numerical Modeling of a Punch Penetration Test Using the Discrete Element Method
title_fullStr Numerical Modeling of a Punch Penetration Test Using the Discrete Element Method
title_full_unstemmed Numerical Modeling of a Punch Penetration Test Using the Discrete Element Method
title_sort numerical modeling of a punch penetration test using the discrete element method
publisher Sciendo
series Slovak Journal of Civil Engineering
issn 1338-3973
publishDate 2020-06-01
description Understanding the brittleness of rock has a crucial importance in rock engineering applications such as the mechanical excavation of rock. In this study, numerical modeling of a punch penetration test is performed using the Discrete Element Method (DEM). The Peak Strength Index (PSI) as a function of the brittleness index was calculated using the axial load and a penetration graph obtained from numerical models. In the first step, the numerical model was verified by experimental results. The results obtained from the numerical modeling showed a good agreement with those obtained from the experimental tests. The propagation path was also simulated using Voronoi meshing. The fracture was created under the indenter in the first step, and then radial fractures were propagated. The effects of confining pressure and strength parameters on the PSI were subsequently investigated. The numerical results showed that the PSI increases with enhancing the confining pressure and the strength parameter of the rock, including cohesion and the friction angle. A new relationship between the strength parameters and PSI was also introduced based on two variable regressions of the numerical results.
topic punchpenetrationtest
indentation test
peak slope index
brittleness
dem
url http://www.degruyter.com/view/j/sjce.2020.28.issue-2/sjce-2020-0008/sjce-2020-0008.xml?format=INT
work_keys_str_mv AT basiratrouhollah numericalmodelingofapunchpenetrationtestusingthediscreteelementmethod
AT hamidijafarkhademi numericalmodelingofapunchpenetrationtestusingthediscreteelementmethod
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