Localized Enhancement of Infrared Radiation Temperature of Rock Compressively Sheared to Fracturing Sliding: Features and Significance

Previous experiments indicated that infrared radiation temperature (IRT) was applied in monitoring rock stress or rock mass fracturing, and abnormal IRT phenomena preceding rock failure or tectonic earthquakes were frequently reported. However, the characteristics of IRT changing with rock fracturin...

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Main Authors: Xiangxin Liu, Lixin Wu, Yanbo Zhang, Wenfei Mao
Format: Article
Language:English
Published: Frontiers Media S.A. 2021-10-01
Series:Frontiers in Earth Science
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/feart.2021.756369/full
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spelling doaj-e21287c9f1694963a0dd466d88938a352021-10-05T15:21:10ZengFrontiers Media S.A.Frontiers in Earth Science2296-64632021-10-01910.3389/feart.2021.756369756369Localized Enhancement of Infrared Radiation Temperature of Rock Compressively Sheared to Fracturing Sliding: Features and SignificanceXiangxin Liu0Xiangxin Liu1Lixin Wu2Lixin Wu3Yanbo Zhang4Wenfei Mao5Wenfei Mao6College of Mining Engineering, North China University of Science and Technology, Tangshan, ChinaCollege of Resources and Civil Engineering, Northeastern University, Shenyang, ChinaSchool of Geosciences and Info-Physics, Central South University, Changsha, ChinaLab of Geohazards Perception, Cognition and Predication, Central South University, Changsha, ChinaCollege of Mining Engineering, North China University of Science and Technology, Tangshan, ChinaSchool of Geosciences and Info-Physics, Central South University, Changsha, ChinaLab of Geohazards Perception, Cognition and Predication, Central South University, Changsha, ChinaPrevious experiments indicated that infrared radiation temperature (IRT) was applied in monitoring rock stress or rock mass fracturing, and abnormal IRT phenomena preceding rock failure or tectonic earthquakes were frequently reported. However, the characteristics of IRT changing with rock fracturing and frictional sliding are not clear, which leaves much uncertainties of location and pattern identification of stress-produced IRT. In this study, we investigated carefully the localized IRT enhancement of rock compressively sheared to fracturing and sliding (named as CSFS) with marble and granite specimens. Infrared thermogram and visible photos were synchronously observed in the process of rock CSFS experiment. We revealed that localized IRT enhancement was determined by local stress locking, sheared fracturing, and frictional sliding, and the relations between the Kcv of IRT and the shear force are almost linear in wave length 3.7–4.8 μm. In the process of rock CSFS, the detected ΔIRT which resulted from thermoelastic effect is 0.418 K, while the detected ΔIRT resulted from friction effect reaches up to 10.372 K, which is about 25 times to the former. This study is of potential values for infrared detection of rock mass failure in engineering scale and satellite remote sensing of the seismogenic process in the regional scale.https://www.frontiersin.org/articles/10.3389/feart.2021.756369/fullremote sensing rock mechanics (RSRM)infrared radiation temperaturelocalized IRT enhancementcompressively shearing to fracturing and sliding (CSFS)seismogenic process
collection DOAJ
language English
format Article
sources DOAJ
author Xiangxin Liu
Xiangxin Liu
Lixin Wu
Lixin Wu
Yanbo Zhang
Wenfei Mao
Wenfei Mao
spellingShingle Xiangxin Liu
Xiangxin Liu
Lixin Wu
Lixin Wu
Yanbo Zhang
Wenfei Mao
Wenfei Mao
Localized Enhancement of Infrared Radiation Temperature of Rock Compressively Sheared to Fracturing Sliding: Features and Significance
Frontiers in Earth Science
remote sensing rock mechanics (RSRM)
infrared radiation temperature
localized IRT enhancement
compressively shearing to fracturing and sliding (CSFS)
seismogenic process
author_facet Xiangxin Liu
Xiangxin Liu
Lixin Wu
Lixin Wu
Yanbo Zhang
Wenfei Mao
Wenfei Mao
author_sort Xiangxin Liu
title Localized Enhancement of Infrared Radiation Temperature of Rock Compressively Sheared to Fracturing Sliding: Features and Significance
title_short Localized Enhancement of Infrared Radiation Temperature of Rock Compressively Sheared to Fracturing Sliding: Features and Significance
title_full Localized Enhancement of Infrared Radiation Temperature of Rock Compressively Sheared to Fracturing Sliding: Features and Significance
title_fullStr Localized Enhancement of Infrared Radiation Temperature of Rock Compressively Sheared to Fracturing Sliding: Features and Significance
title_full_unstemmed Localized Enhancement of Infrared Radiation Temperature of Rock Compressively Sheared to Fracturing Sliding: Features and Significance
title_sort localized enhancement of infrared radiation temperature of rock compressively sheared to fracturing sliding: features and significance
publisher Frontiers Media S.A.
series Frontiers in Earth Science
issn 2296-6463
publishDate 2021-10-01
description Previous experiments indicated that infrared radiation temperature (IRT) was applied in monitoring rock stress or rock mass fracturing, and abnormal IRT phenomena preceding rock failure or tectonic earthquakes were frequently reported. However, the characteristics of IRT changing with rock fracturing and frictional sliding are not clear, which leaves much uncertainties of location and pattern identification of stress-produced IRT. In this study, we investigated carefully the localized IRT enhancement of rock compressively sheared to fracturing and sliding (named as CSFS) with marble and granite specimens. Infrared thermogram and visible photos were synchronously observed in the process of rock CSFS experiment. We revealed that localized IRT enhancement was determined by local stress locking, sheared fracturing, and frictional sliding, and the relations between the Kcv of IRT and the shear force are almost linear in wave length 3.7–4.8 μm. In the process of rock CSFS, the detected ΔIRT which resulted from thermoelastic effect is 0.418 K, while the detected ΔIRT resulted from friction effect reaches up to 10.372 K, which is about 25 times to the former. This study is of potential values for infrared detection of rock mass failure in engineering scale and satellite remote sensing of the seismogenic process in the regional scale.
topic remote sensing rock mechanics (RSRM)
infrared radiation temperature
localized IRT enhancement
compressively shearing to fracturing and sliding (CSFS)
seismogenic process
url https://www.frontiersin.org/articles/10.3389/feart.2021.756369/full
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