Effect of Amplitude and Confining Pressure on Granite Failure under Ultrahigh Frequency (UHF) Impact Based on Radiation Temperature

Ultrahigh frequency impact technology has great potential to break hard rocks with lower energy consumption. Based on the infrared nondestructive testing technology, the effects of load (i.e., amplitude) and boundary (i.e., confining pressure) conditions on granite damage under ultrahigh frequency i...

Full description

Saved in:
Bibliographic Details
Main Authors: Cheng Zhang, Shulei Zhang, Dajun Zhao
Format: Article
Language:English
Published: Wiley 2022-01-01
Series:Geofluids
Online Access:http://dx.doi.org/10.1155/2022/4817269
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1849399413518106624
author Cheng Zhang
Shulei Zhang
Dajun Zhao
author_facet Cheng Zhang
Shulei Zhang
Dajun Zhao
author_sort Cheng Zhang
collection DOAJ
description Ultrahigh frequency impact technology has great potential to break hard rocks with lower energy consumption. Based on the infrared nondestructive testing technology, the effects of load (i.e., amplitude) and boundary (i.e., confining pressure) conditions on granite damage under ultrahigh frequency impact have been investigated to promote the application of this technology in rock engineering. Experimental results demonstrate that the evolution law of the maximum radiation temperature on granite surface reflects the granite damage state. Under ultrahigh impact, granite specimens are damaged effectively with the impact amplitude exceeding 32 μm, and the failure mode of the specimen is changed by the confining pressure. Depending on Griffith’s theory, the extension angle of the fatigue crack changes from 60 to 30 degrees with increasing confining pressure. And the transverse fracture occurs in the upper part of the specimen under ultrahigh frequency impact subjected to confining pressure. This research determines the amplitude threshold of the ultrahigh frequency impact load and verifies the effectiveness of ultrahigh frequency impact technology for granite failure subjected to confining pressure.
format Article
id doaj-art-a392fcfc40d641609c4e61d3d46b601e
institution Kabale University
issn 1468-8123
language English
publishDate 2022-01-01
publisher Wiley
record_format Article
series Geofluids
spelling doaj-art-a392fcfc40d641609c4e61d3d46b601e2025-08-20T03:38:19ZengWileyGeofluids1468-81232022-01-01202210.1155/2022/4817269Effect of Amplitude and Confining Pressure on Granite Failure under Ultrahigh Frequency (UHF) Impact Based on Radiation TemperatureCheng Zhang0Shulei Zhang1Dajun Zhao2College of Construction EngineeringYellow River SurveyCollege of Construction EngineeringUltrahigh frequency impact technology has great potential to break hard rocks with lower energy consumption. Based on the infrared nondestructive testing technology, the effects of load (i.e., amplitude) and boundary (i.e., confining pressure) conditions on granite damage under ultrahigh frequency impact have been investigated to promote the application of this technology in rock engineering. Experimental results demonstrate that the evolution law of the maximum radiation temperature on granite surface reflects the granite damage state. Under ultrahigh impact, granite specimens are damaged effectively with the impact amplitude exceeding 32 μm, and the failure mode of the specimen is changed by the confining pressure. Depending on Griffith’s theory, the extension angle of the fatigue crack changes from 60 to 30 degrees with increasing confining pressure. And the transverse fracture occurs in the upper part of the specimen under ultrahigh frequency impact subjected to confining pressure. This research determines the amplitude threshold of the ultrahigh frequency impact load and verifies the effectiveness of ultrahigh frequency impact technology for granite failure subjected to confining pressure.http://dx.doi.org/10.1155/2022/4817269
spellingShingle Cheng Zhang
Shulei Zhang
Dajun Zhao
Effect of Amplitude and Confining Pressure on Granite Failure under Ultrahigh Frequency (UHF) Impact Based on Radiation Temperature
Geofluids
title Effect of Amplitude and Confining Pressure on Granite Failure under Ultrahigh Frequency (UHF) Impact Based on Radiation Temperature
title_full Effect of Amplitude and Confining Pressure on Granite Failure under Ultrahigh Frequency (UHF) Impact Based on Radiation Temperature
title_fullStr Effect of Amplitude and Confining Pressure on Granite Failure under Ultrahigh Frequency (UHF) Impact Based on Radiation Temperature
title_full_unstemmed Effect of Amplitude and Confining Pressure on Granite Failure under Ultrahigh Frequency (UHF) Impact Based on Radiation Temperature
title_short Effect of Amplitude and Confining Pressure on Granite Failure under Ultrahigh Frequency (UHF) Impact Based on Radiation Temperature
title_sort effect of amplitude and confining pressure on granite failure under ultrahigh frequency uhf impact based on radiation temperature
url http://dx.doi.org/10.1155/2022/4817269
work_keys_str_mv AT chengzhang effectofamplitudeandconfiningpressureongranitefailureunderultrahighfrequencyuhfimpactbasedonradiationtemperature
AT shuleizhang effectofamplitudeandconfiningpressureongranitefailureunderultrahighfrequencyuhfimpactbasedonradiationtemperature
AT dajunzhao effectofamplitudeandconfiningpressureongranitefailureunderultrahighfrequencyuhfimpactbasedonradiationtemperature