Full-field mapping of internal strain distribution in red sandstone specimen under compression using digital volumetric speckle photography and X-ray computed tomography
It is always desirable to know the interior deformation pattern when a rock is subjected to mechanical load. Few experimental techniques exist that can represent full-field three-dimensional (3D) strain distribution inside a rock specimen. And yet it is crucial that this information is available for...
Main Authors: | , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
Elsevier
2015-04-01
|
Series: | Journal of Rock Mechanics and Geotechnical Engineering |
Subjects: | |
Online Access: | http://www.sciencedirect.com/science/article/pii/S1674775515000177 |
id |
doaj-336fdbb8968c42e8bc4158096aa3fe75 |
---|---|
record_format |
Article |
spelling |
doaj-336fdbb8968c42e8bc4158096aa3fe752020-11-25T00:24:18ZengElsevierJournal of Rock Mechanics and Geotechnical Engineering1674-77552015-04-017213614610.1016/j.jrmge.2015.01.003Full-field mapping of internal strain distribution in red sandstone specimen under compression using digital volumetric speckle photography and X-ray computed tomographyLingtao Mao0Jianping Zuo1Zexun Yuan2Fu-Pen Chiang3State Key Laboratory of Coal Resources and Safe Mining, China University of Mining & Technology (Beijing), Beijing 100083, ChinaState Key Laboratory of Coal Resources and Safe Mining, China University of Mining & Technology (Beijing), Beijing 100083, ChinaState Key Laboratory of Coal Resources and Safe Mining, China University of Mining & Technology (Beijing), Beijing 100083, ChinaLaboratory for Experimental Mechanics Research, Stony Brook University, Stony Brook, NY 11794-2300, USAIt is always desirable to know the interior deformation pattern when a rock is subjected to mechanical load. Few experimental techniques exist that can represent full-field three-dimensional (3D) strain distribution inside a rock specimen. And yet it is crucial that this information is available for fully understanding the failure mechanism of rocks or other geomaterials. In this study, by using the newly developed digital volumetric speckle photography (DVSP) technique in conjunction with X-ray computed tomography (CT) and taking advantage of natural 3D speckles formed inside the rock due to material impurities and voids, we can probe the interior of a rock to map its deformation pattern under load and shed light on its failure mechanism. We apply this technique to the analysis of a red sandstone specimen under increasing uniaxial compressive load applied incrementally. The full-field 3D displacement fields are obtained in the specimen as a function of the load, from which both the volumetric and the deviatoric strain fields are calculated. Strain localization zones which lead to the eventual failure of the rock are identified. The results indicate that both shear and tension are contributing factors to the failure mechanism.http://www.sciencedirect.com/science/article/pii/S1674775515000177Red sandstoneStrain localizationUniaxial compressionDigital volumetric speckle photography (DVSP)X-ray micro-tomography |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Lingtao Mao Jianping Zuo Zexun Yuan Fu-Pen Chiang |
spellingShingle |
Lingtao Mao Jianping Zuo Zexun Yuan Fu-Pen Chiang Full-field mapping of internal strain distribution in red sandstone specimen under compression using digital volumetric speckle photography and X-ray computed tomography Journal of Rock Mechanics and Geotechnical Engineering Red sandstone Strain localization Uniaxial compression Digital volumetric speckle photography (DVSP) X-ray micro-tomography |
author_facet |
Lingtao Mao Jianping Zuo Zexun Yuan Fu-Pen Chiang |
author_sort |
Lingtao Mao |
title |
Full-field mapping of internal strain distribution in red sandstone specimen under compression using digital volumetric speckle photography and X-ray computed tomography |
title_short |
Full-field mapping of internal strain distribution in red sandstone specimen under compression using digital volumetric speckle photography and X-ray computed tomography |
title_full |
Full-field mapping of internal strain distribution in red sandstone specimen under compression using digital volumetric speckle photography and X-ray computed tomography |
title_fullStr |
Full-field mapping of internal strain distribution in red sandstone specimen under compression using digital volumetric speckle photography and X-ray computed tomography |
title_full_unstemmed |
Full-field mapping of internal strain distribution in red sandstone specimen under compression using digital volumetric speckle photography and X-ray computed tomography |
title_sort |
full-field mapping of internal strain distribution in red sandstone specimen under compression using digital volumetric speckle photography and x-ray computed tomography |
publisher |
Elsevier |
series |
Journal of Rock Mechanics and Geotechnical Engineering |
issn |
1674-7755 |
publishDate |
2015-04-01 |
description |
It is always desirable to know the interior deformation pattern when a rock is subjected to mechanical load. Few experimental techniques exist that can represent full-field three-dimensional (3D) strain distribution inside a rock specimen. And yet it is crucial that this information is available for fully understanding the failure mechanism of rocks or other geomaterials. In this study, by using the newly developed digital volumetric speckle photography (DVSP) technique in conjunction with X-ray computed tomography (CT) and taking advantage of natural 3D speckles formed inside the rock due to material impurities and voids, we can probe the interior of a rock to map its deformation pattern under load and shed light on its failure mechanism. We apply this technique to the analysis of a red sandstone specimen under increasing uniaxial compressive load applied incrementally. The full-field 3D displacement fields are obtained in the specimen as a function of the load, from which both the volumetric and the deviatoric strain fields are calculated. Strain localization zones which lead to the eventual failure of the rock are identified. The results indicate that both shear and tension are contributing factors to the failure mechanism. |
topic |
Red sandstone Strain localization Uniaxial compression Digital volumetric speckle photography (DVSP) X-ray micro-tomography |
url |
http://www.sciencedirect.com/science/article/pii/S1674775515000177 |
work_keys_str_mv |
AT lingtaomao fullfieldmappingofinternalstraindistributioninredsandstonespecimenundercompressionusingdigitalvolumetricspecklephotographyandxraycomputedtomography AT jianpingzuo fullfieldmappingofinternalstraindistributioninredsandstonespecimenundercompressionusingdigitalvolumetricspecklephotographyandxraycomputedtomography AT zexunyuan fullfieldmappingofinternalstraindistributioninredsandstonespecimenundercompressionusingdigitalvolumetricspecklephotographyandxraycomputedtomography AT fupenchiang fullfieldmappingofinternalstraindistributioninredsandstonespecimenundercompressionusingdigitalvolumetricspecklephotographyandxraycomputedtomography |
_version_ |
1725352818456395776 |