Experimental study on tensile behaviors of cracked ultra-high performance concrete under freezing and thawing
A combination of external actions and autogenous shrinkage makes ultra-high performance concrete (UHPC) prone to cracking in service, which inevitably harms the durability and working life. This paper focuses on studying the effects of freezing and thawing (FT) cycles on the tensile behavior of crac...
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Published in: | Construction & building materials Vol. 411; p. 134187 |
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Language: | English |
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Abstract | A combination of external actions and autogenous shrinkage makes ultra-high performance concrete (UHPC) prone to cracking in service, which inevitably harms the durability and working life. This paper focuses on studying the effects of freezing and thawing (FT) cycles on the tensile behavior of cracked UHPC. Three sets of dog-bone shaped specimens with pre-tensile strain levels of 0%, 0.05%, and 0.1% were prepared. Two kinds of experimental environments including FT cycles and soaking in water were adopted for comparison. Uniaxial tensile test, non-destructive measurements, and loss-on-ignition were performed to characterize the performances, along with ImageJ technology to identify the sectional pore structures. The results indicated that, compared with non-cracked UHPC, long-term FT action caused more deterioration in the initial cracking strength, tensile strength, tensile strain, and especially strain energy of cracked UHPC. In comparison, the water action generally favored the development of tensile properties of UHPC independent of the cracking state. The crack distribution tended to be unsaturated under the FT environment, showing a larger cracking spacing. The FT action hampered the re-hydration reaction, leading to a slower improvement of mass and resonance frequency at the early stage, and the values were always lower than those of the non-cracked UHPC. In addition, the section near to pre-tensile crack showed more large pores under the FT environment, and a reverse trend occurred under the water environment. Thus, it could be concluded that the cracked UHPC was more sensitive to FT action.
•The frost resistance of cracked UHPC is investigated.•A combination of non-destructive and destructive test is adopted.•The multiple cracking behavior of UHPC is discussed. |
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AbstractList | A combination of external actions and autogenous shrinkage makes ultra-high performance concrete (UHPC) prone to cracking in service, which inevitably harms the durability and working life. This paper focuses on studying the effects of freezing and thawing (FT) cycles on the tensile behavior of cracked UHPC. Three sets of dog-bone shaped specimens with pre-tensile strain levels of 0%, 0.05%, and 0.1% were prepared. Two kinds of experimental environments including FT cycles and soaking in water were adopted for comparison. Uniaxial tensile test, non-destructive measurements, and loss-on-ignition were performed to characterize the performances, along with ImageJ technology to identify the sectional pore structures. The results indicated that, compared with non-cracked UHPC, long-term FT action caused more deterioration in the initial cracking strength, tensile strength, tensile strain, and especially strain energy of cracked UHPC. In comparison, the water action generally favored the development of tensile properties of UHPC independent of the cracking state. The crack distribution tended to be unsaturated under the FT environment, showing a larger cracking spacing. The FT action hampered the re-hydration reaction, leading to a slower improvement of mass and resonance frequency at the early stage, and the values were always lower than those of the non-cracked UHPC. In addition, the section near to pre-tensile crack showed more large pores under the FT environment, and a reverse trend occurred under the water environment. Thus, it could be concluded that the cracked UHPC was more sensitive to FT action.
•The frost resistance of cracked UHPC is investigated.•A combination of non-destructive and destructive test is adopted.•The multiple cracking behavior of UHPC is discussed. |
ArticleNumber | 134187 |
Author | Peng, Bin Wang, Fei Dai, Lan-qing Kong, Ning Kan, Lili |
Author_xml | – sequence: 1 givenname: Lili surname: Kan fullname: Kan, Lili organization: School of Environment and Architecture, University of Shanghai for Science and Technology, 516 Jungong Road, Shanghai 200093, China – sequence: 2 givenname: Lan-qing surname: Dai fullname: Dai, Lan-qing organization: School of Environment and Architecture, University of Shanghai for Science and Technology, 516 Jungong Road, Shanghai 200093, China – sequence: 3 givenname: Ning surname: Kong fullname: Kong, Ning organization: School of Environment and Architecture, University of Shanghai for Science and Technology, 516 Jungong Road, Shanghai 200093, China – sequence: 4 givenname: Bin orcidid: 0000-0001-8377-7023 surname: Peng fullname: Peng, Bin organization: School of Environment and Architecture, University of Shanghai for Science and Technology, 516 Jungong Road, Shanghai 200093, China – sequence: 5 givenname: Fei surname: Wang fullname: Wang, Fei email: wangfei661@tongji.edu.cn organization: Department of Disaster Mitigation for Structures, College of Civil Engineering, Tongji University, 1239 Siping Road, Shanghai 200092, China |
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Keywords | Multiple cracking Re-hydration reaction Ultra-high performance concrete Cracking state Freezing and thawing actions Tensile properties |
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SubjectTerms | Cracking state Freezing and thawing actions Multiple cracking Re-hydration reaction Tensile properties Ultra-high performance concrete |
Title | Experimental study on tensile behaviors of cracked ultra-high performance concrete under freezing and thawing |
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