Research on the mechanical behaviour of shale based on multiscale analysis

In view of the difficulty in obtaining the mechanical properties of shale, the multiscale analysis of shale was performed on a shale outcrop from the Silurian Longmaxi Formation in the Changning area, Sichuan Basin, China. The nano-/micro-indentation test is an effective method for multiscale mechan...

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Main Authors: Qiang Han, Zhan Qu, Zhengyin Ye
Format: Article
Language:English
Published: The Royal Society 2018-01-01
Series:Royal Society Open Science
Subjects:
Online Access:https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.181039
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spelling doaj-df572eac37794538a9a23ca759db61412020-11-25T04:09:48ZengThe Royal SocietyRoyal Society Open Science2054-57032018-01-0151010.1098/rsos.181039181039Research on the mechanical behaviour of shale based on multiscale analysisQiang HanZhan QuZhengyin YeIn view of the difficulty in obtaining the mechanical properties of shale, the multiscale analysis of shale was performed on a shale outcrop from the Silurian Longmaxi Formation in the Changning area, Sichuan Basin, China. The nano-/micro-indentation test is an effective method for multiscale mechanical analysis. In this paper, effective criteria for the shale indentation test were evaluated. The elastic modulus was evaluated at a multiscale and the engineering validation of drilling cuttings was performed. The porosity tests showed that the pore distribution of shale from the nanoscale to macro-pore could be better displayed by the nuclear magnetic resonance test. The micro-scale elastic modulus and hardness increased nonlinearly with the increase in the clay packing density. It was observed that the size effect of the micro-hardness was based on porosity and composition. The partial spalling of shale at the micro-scale could lead to irregular bulges or steps in a load–displacement curve. The elastic modulus of pure clay minerals was 24.2 GPa on the parallel bedding plane and 15.8 GPa on the vertical bedding plane. The contact hardness (pure clay minerals) was 0.51 GPa. The indentation results showed that the micro-elastic modulus of shale obeyed the normal distribution, and the statistical average could predict the macro-mechanical properties effectively. The present work can provide a new way to recognize the mechanical behaviour of shale.https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.181039shalemultiscale analysismechanical evaluationcharacterization method
collection DOAJ
language English
format Article
sources DOAJ
author Qiang Han
Zhan Qu
Zhengyin Ye
spellingShingle Qiang Han
Zhan Qu
Zhengyin Ye
Research on the mechanical behaviour of shale based on multiscale analysis
Royal Society Open Science
shale
multiscale analysis
mechanical evaluation
characterization method
author_facet Qiang Han
Zhan Qu
Zhengyin Ye
author_sort Qiang Han
title Research on the mechanical behaviour of shale based on multiscale analysis
title_short Research on the mechanical behaviour of shale based on multiscale analysis
title_full Research on the mechanical behaviour of shale based on multiscale analysis
title_fullStr Research on the mechanical behaviour of shale based on multiscale analysis
title_full_unstemmed Research on the mechanical behaviour of shale based on multiscale analysis
title_sort research on the mechanical behaviour of shale based on multiscale analysis
publisher The Royal Society
series Royal Society Open Science
issn 2054-5703
publishDate 2018-01-01
description In view of the difficulty in obtaining the mechanical properties of shale, the multiscale analysis of shale was performed on a shale outcrop from the Silurian Longmaxi Formation in the Changning area, Sichuan Basin, China. The nano-/micro-indentation test is an effective method for multiscale mechanical analysis. In this paper, effective criteria for the shale indentation test were evaluated. The elastic modulus was evaluated at a multiscale and the engineering validation of drilling cuttings was performed. The porosity tests showed that the pore distribution of shale from the nanoscale to macro-pore could be better displayed by the nuclear magnetic resonance test. The micro-scale elastic modulus and hardness increased nonlinearly with the increase in the clay packing density. It was observed that the size effect of the micro-hardness was based on porosity and composition. The partial spalling of shale at the micro-scale could lead to irregular bulges or steps in a load–displacement curve. The elastic modulus of pure clay minerals was 24.2 GPa on the parallel bedding plane and 15.8 GPa on the vertical bedding plane. The contact hardness (pure clay minerals) was 0.51 GPa. The indentation results showed that the micro-elastic modulus of shale obeyed the normal distribution, and the statistical average could predict the macro-mechanical properties effectively. The present work can provide a new way to recognize the mechanical behaviour of shale.
topic shale
multiscale analysis
mechanical evaluation
characterization method
url https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.181039
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AT zhanqu researchonthemechanicalbehaviourofshalebasedonmultiscaleanalysis
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