Experimental Study on Crack Propagation of Concrete Under Various Loading Rates with Digital Image Correlation Method

Abstract The quantificational exploration of the propagation law of fracture process zone (FPZ) is of great importance to the research on concrete fracture. This paper performed fracture experiments on pre-cracked concrete beams under various loading rates. Digital image correlation (DIC) method was...

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Main Authors: Jingwu Bu, Xudong Chen, Liangpeng Hu, Hanqing Yang, Saisai Liu
Format: Article
Language:English
Published: SpringerOpen 2020-05-01
Series:International Journal of Concrete Structures and Materials
Subjects:
Online Access:http://link.springer.com/article/10.1186/s40069-020-00400-5
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spelling doaj-a243889ffab440e18bd50649fb085f472020-11-25T03:10:25ZengSpringerOpenInternational Journal of Concrete Structures and Materials1976-04852234-13152020-05-0114112510.1186/s40069-020-00400-5Experimental Study on Crack Propagation of Concrete Under Various Loading Rates with Digital Image Correlation MethodJingwu Bu0Xudong Chen1Liangpeng Hu2Hanqing Yang3Saisai Liu4College of Hydraulic Science and Engineering, Yangzhou UniversityCollege of Civil and Transportation Engineering, Hohai UniversityCollege of Civil and Transportation Engineering, Hohai UniversityCollege of Civil and Transportation Engineering, Hohai UniversityCollege of Civil and Transportation Engineering, Hohai UniversityAbstract The quantificational exploration of the propagation law of fracture process zone (FPZ) is of great importance to the research on concrete fracture. This paper performed fracture experiments on pre-cracked concrete beams under various loading rates. Digital image correlation (DIC) method was applied to obtain the whole field displacement of concrete in the fracture test. The crack opening displacement (COD) and the evolution of FPZ were determined based on the whole field displacement. The results show that the length of FPZ first increases and then decreases with the development of the effective crack length and the maximum length of FPZ is about 60 mm. It can be found that the length of FPZ corresponding to the peak load decreases with the increase of loading rates. Based on the fictitious crack model, a bilinear softening model was established. According to the proposed model, the mechanical behavior and the propagation law of FPZ were analyzed. The bilinear softening model can reflect the microcrack development and the aggregate interlocking in the FPZ.http://link.springer.com/article/10.1186/s40069-020-00400-5concreteloading ratesdigital image correlation (DIC)fracture process zone (FPZ)crack opening displacement (COD)
collection DOAJ
language English
format Article
sources DOAJ
author Jingwu Bu
Xudong Chen
Liangpeng Hu
Hanqing Yang
Saisai Liu
spellingShingle Jingwu Bu
Xudong Chen
Liangpeng Hu
Hanqing Yang
Saisai Liu
Experimental Study on Crack Propagation of Concrete Under Various Loading Rates with Digital Image Correlation Method
International Journal of Concrete Structures and Materials
concrete
loading rates
digital image correlation (DIC)
fracture process zone (FPZ)
crack opening displacement (COD)
author_facet Jingwu Bu
Xudong Chen
Liangpeng Hu
Hanqing Yang
Saisai Liu
author_sort Jingwu Bu
title Experimental Study on Crack Propagation of Concrete Under Various Loading Rates with Digital Image Correlation Method
title_short Experimental Study on Crack Propagation of Concrete Under Various Loading Rates with Digital Image Correlation Method
title_full Experimental Study on Crack Propagation of Concrete Under Various Loading Rates with Digital Image Correlation Method
title_fullStr Experimental Study on Crack Propagation of Concrete Under Various Loading Rates with Digital Image Correlation Method
title_full_unstemmed Experimental Study on Crack Propagation of Concrete Under Various Loading Rates with Digital Image Correlation Method
title_sort experimental study on crack propagation of concrete under various loading rates with digital image correlation method
publisher SpringerOpen
series International Journal of Concrete Structures and Materials
issn 1976-0485
2234-1315
publishDate 2020-05-01
description Abstract The quantificational exploration of the propagation law of fracture process zone (FPZ) is of great importance to the research on concrete fracture. This paper performed fracture experiments on pre-cracked concrete beams under various loading rates. Digital image correlation (DIC) method was applied to obtain the whole field displacement of concrete in the fracture test. The crack opening displacement (COD) and the evolution of FPZ were determined based on the whole field displacement. The results show that the length of FPZ first increases and then decreases with the development of the effective crack length and the maximum length of FPZ is about 60 mm. It can be found that the length of FPZ corresponding to the peak load decreases with the increase of loading rates. Based on the fictitious crack model, a bilinear softening model was established. According to the proposed model, the mechanical behavior and the propagation law of FPZ were analyzed. The bilinear softening model can reflect the microcrack development and the aggregate interlocking in the FPZ.
topic concrete
loading rates
digital image correlation (DIC)
fracture process zone (FPZ)
crack opening displacement (COD)
url http://link.springer.com/article/10.1186/s40069-020-00400-5
work_keys_str_mv AT jingwubu experimentalstudyoncrackpropagationofconcreteundervariousloadingrateswithdigitalimagecorrelationmethod
AT xudongchen experimentalstudyoncrackpropagationofconcreteundervariousloadingrateswithdigitalimagecorrelationmethod
AT liangpenghu experimentalstudyoncrackpropagationofconcreteundervariousloadingrateswithdigitalimagecorrelationmethod
AT hanqingyang experimentalstudyoncrackpropagationofconcreteundervariousloadingrateswithdigitalimagecorrelationmethod
AT saisailiu experimentalstudyoncrackpropagationofconcreteundervariousloadingrateswithdigitalimagecorrelationmethod
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