Evaluation of elastoplastic properties of brittle sandstone at microscale using micro‐indentation test and simulation

Abstract The micro‐indentation test has been regarded as an efficient tool to obtain the elasticity modulus and hardness of the minerals in rock, which is essential for studying the deformation‐crack mechanism of the pore structure. However, researches on microscopic plastic parameters have been rar...

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Main Authors: Rui Song, Yao Wang, Shuyu Sun, Mengmeng Cui, Jianjun Liu
Format: Article
Language:English
Published: Wiley 2020-10-01
Series:Energy Science & Engineering
Subjects:
Online Access:https://doi.org/10.1002/ese3.759
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spelling doaj-bb1b2b99d86e48a6be11b3ce9ab1db0c2020-11-25T03:42:20ZengWileyEnergy Science & Engineering2050-05052020-10-018103490350110.1002/ese3.759Evaluation of elastoplastic properties of brittle sandstone at microscale using micro‐indentation test and simulationRui Song0Yao Wang1Shuyu Sun2Mengmeng Cui3Jianjun Liu4State Key Laboratory of Geomechanics and Geotechnical Engineering Institute of Rock and Soil Mechanics Chinese Academy of Sciences Wuhan ChinaSouthwest Petroleum University Chengdu ChinaComputational Transport Phenomena Laboratory (CTPL) King Abdullah University of Science and Technology (KAUST) Thuwal Saudi ArabiaSouthwest Petroleum University Chengdu ChinaState Key Laboratory of Geomechanics and Geotechnical Engineering Institute of Rock and Soil Mechanics Chinese Academy of Sciences Wuhan ChinaAbstract The micro‐indentation test has been regarded as an efficient tool to obtain the elasticity modulus and hardness of the minerals in rock, which is essential for studying the deformation‐crack mechanism of the pore structure. However, researches on microscopic plastic parameters have been rarely conducted. This paper develops a novel method to determine the microscopic initial strength and residual strength of brittle sandstone. A dimensionless analysis on the micro‐indentation curve of rock is conducted to acquire its key influencing factors of the elastoplastic properties, which include the initial cohesive force and the residual cohesive force. Then, small cylindrical rock samples are prepared for micro‐CT scanning and micro‐indentation test by a conical indenter to acquire the microstructure, indentation curve, and the microscale elasticity. The pore scale indentation simulation is conducted using the reconstructed rock models with different strength. The function between the indentation curve and strength is deduced by the parametric finite element method (FEM) study. Based on this function, the microscale initial strength and residual strength of the brittle sandstone are determined. The proposed method is validated by comparing the microscale numerical simulation results of uniaxial compression on the representative volume element (RVE) model of rock with the experimental results. A reasonable deviation is observed compared with the experimental benchmark data for the stress‐strain curves, as well as Young's modulus and uniaxial compression strength, proving the effectiveness of the proposed method.https://doi.org/10.1002/ese3.759dimensionless analysisinitial strengthmicro‐CTmicro‐indentationresidual strength
collection DOAJ
language English
format Article
sources DOAJ
author Rui Song
Yao Wang
Shuyu Sun
Mengmeng Cui
Jianjun Liu
spellingShingle Rui Song
Yao Wang
Shuyu Sun
Mengmeng Cui
Jianjun Liu
Evaluation of elastoplastic properties of brittle sandstone at microscale using micro‐indentation test and simulation
Energy Science & Engineering
dimensionless analysis
initial strength
micro‐CT
micro‐indentation
residual strength
author_facet Rui Song
Yao Wang
Shuyu Sun
Mengmeng Cui
Jianjun Liu
author_sort Rui Song
title Evaluation of elastoplastic properties of brittle sandstone at microscale using micro‐indentation test and simulation
title_short Evaluation of elastoplastic properties of brittle sandstone at microscale using micro‐indentation test and simulation
title_full Evaluation of elastoplastic properties of brittle sandstone at microscale using micro‐indentation test and simulation
title_fullStr Evaluation of elastoplastic properties of brittle sandstone at microscale using micro‐indentation test and simulation
title_full_unstemmed Evaluation of elastoplastic properties of brittle sandstone at microscale using micro‐indentation test and simulation
title_sort evaluation of elastoplastic properties of brittle sandstone at microscale using micro‐indentation test and simulation
publisher Wiley
series Energy Science & Engineering
issn 2050-0505
publishDate 2020-10-01
description Abstract The micro‐indentation test has been regarded as an efficient tool to obtain the elasticity modulus and hardness of the minerals in rock, which is essential for studying the deformation‐crack mechanism of the pore structure. However, researches on microscopic plastic parameters have been rarely conducted. This paper develops a novel method to determine the microscopic initial strength and residual strength of brittle sandstone. A dimensionless analysis on the micro‐indentation curve of rock is conducted to acquire its key influencing factors of the elastoplastic properties, which include the initial cohesive force and the residual cohesive force. Then, small cylindrical rock samples are prepared for micro‐CT scanning and micro‐indentation test by a conical indenter to acquire the microstructure, indentation curve, and the microscale elasticity. The pore scale indentation simulation is conducted using the reconstructed rock models with different strength. The function between the indentation curve and strength is deduced by the parametric finite element method (FEM) study. Based on this function, the microscale initial strength and residual strength of the brittle sandstone are determined. The proposed method is validated by comparing the microscale numerical simulation results of uniaxial compression on the representative volume element (RVE) model of rock with the experimental results. A reasonable deviation is observed compared with the experimental benchmark data for the stress‐strain curves, as well as Young's modulus and uniaxial compression strength, proving the effectiveness of the proposed method.
topic dimensionless analysis
initial strength
micro‐CT
micro‐indentation
residual strength
url https://doi.org/10.1002/ese3.759
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