Mechanical properties of alkali-activated concrete: A state-of-the-art review

•A holistic review of current research on the mechanical properties of AAC is provided.•The AACs reviewed include slag-based, fly ash-based, and fly ash/slag-based types.•Both static and dynamic mechanical properties of AAC are discussed.•The fracture, bond and high-temperature properties of AAC are...

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Published inConstruction & building materials Vol. 127; pp. 68 - 79
Main Authors Ding, Yao, Dai, Jian-Guo, Shi, Cai-Jun
Format Journal Article
LanguageEnglish
Published Elsevier Ltd 30.11.2016
Elsevier B.V
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Abstract •A holistic review of current research on the mechanical properties of AAC is provided.•The AACs reviewed include slag-based, fly ash-based, and fly ash/slag-based types.•Both static and dynamic mechanical properties of AAC are discussed.•The fracture, bond and high-temperature properties of AAC are also addressed.•The slag/fly ash ratio is a very influential factor to the mechanical properties of AAC. Alkali-activated concretes (AACs) are attracting increasing attention due to their potential as alternatives to ordinary Portland cement concrete (OPCC). This paper is a holistic review of current research on the mechanical properties of AAC including research on its compressive strength, tensile strength, elastic modulus, Poisson’s ratio, stress–strain relationship under uniaxial compression, fracture properties, bond mechanism with steel reinforcement, dynamic mechanical properties, and high-temperature performance. Three types of AAC are reviewed: alkali-activated slag, alkali-activated fly ash, and alkali-activated slag-fly ash concretes. The applicability to AAC of design formulas found in codes of practice that were developed to estimate the basic mechanical performances of OPCC is also discussed. It is shown that, in general, AAC exhibits better bond performance with steel reinforcement and better strength performance after exposure to elevated temperatures than OPCC. For the other reviewed mechanical properties, the differences between AAC and OPCC largely depend on the proportions of raw materials in the concrete; specifically, the slag to fly ash ratio may be a very influential factor. As there is a trend to combine slag and fly ash in the production of AAC to achieve normal temperature curing and environmental friendliness, further research is deemed necessary to determine how the slag to fly ash ratio influences the fundamental mechanical properties of AAC and how this affects practical designs.
AbstractList •A holistic review of current research on the mechanical properties of AAC is provided.•The AACs reviewed include slag-based, fly ash-based, and fly ash/slag-based types.•Both static and dynamic mechanical properties of AAC are discussed.•The fracture, bond and high-temperature properties of AAC are also addressed.•The slag/fly ash ratio is a very influential factor to the mechanical properties of AAC. Alkali-activated concretes (AACs) are attracting increasing attention due to their potential as alternatives to ordinary Portland cement concrete (OPCC). This paper is a holistic review of current research on the mechanical properties of AAC including research on its compressive strength, tensile strength, elastic modulus, Poisson’s ratio, stress–strain relationship under uniaxial compression, fracture properties, bond mechanism with steel reinforcement, dynamic mechanical properties, and high-temperature performance. Three types of AAC are reviewed: alkali-activated slag, alkali-activated fly ash, and alkali-activated slag-fly ash concretes. The applicability to AAC of design formulas found in codes of practice that were developed to estimate the basic mechanical performances of OPCC is also discussed. It is shown that, in general, AAC exhibits better bond performance with steel reinforcement and better strength performance after exposure to elevated temperatures than OPCC. For the other reviewed mechanical properties, the differences between AAC and OPCC largely depend on the proportions of raw materials in the concrete; specifically, the slag to fly ash ratio may be a very influential factor. As there is a trend to combine slag and fly ash in the production of AAC to achieve normal temperature curing and environmental friendliness, further research is deemed necessary to determine how the slag to fly ash ratio influences the fundamental mechanical properties of AAC and how this affects practical designs.
Audience Trade
Author Ding, Yao
Dai, Jian-Guo
Shi, Cai-Jun
Author_xml – sequence: 1
  givenname: Yao
  surname: Ding
  fullname: Ding, Yao
  organization: Department of Civil and Environmental Engineering, The Hong Kong Polytechnic University, Hong Kong, China
– sequence: 2
  givenname: Jian-Guo
  surname: Dai
  fullname: Dai, Jian-Guo
  email: cejgdai@polyu.edu.hk
  organization: Department of Civil and Environmental Engineering, The Hong Kong Polytechnic University, Hong Kong, China
– sequence: 3
  givenname: Cai-Jun
  surname: Shi
  fullname: Shi, Cai-Jun
  organization: College of Civil Engineering, Hunan University, Changsha, China
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Keywords Slag
Fly ash
Alkali-activated concrete
Static mechanical properties
High-temperature performance
Dynamic mechanical properties
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  year: 1998
  ident: 10.1016/j.conbuildmat.2016.09.121_b0335
  article-title: Interface between cement paste and quartz sand in alkali-activated slag mortars
  publication-title: Cem. Concr. Res.
  doi: 10.1016/S0008-8846(98)00050-7
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Snippet •A holistic review of current research on the mechanical properties of AAC is provided.•The AACs reviewed include slag-based, fly ash-based, and fly...
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SubjectTerms Alkali-activated concrete
Analysis
Concrete
Dynamic mechanical properties
Fly ash
High-temperature performance
Mechanical properties
Portland cement
Slag
Static mechanical properties
Title Mechanical properties of alkali-activated concrete: A state-of-the-art review
URI https://dx.doi.org/10.1016/j.conbuildmat.2016.09.121
Volume 127
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