4.7 Article

Tensile behavior and microstructure of hybrid fiber ambient cured one-part engineered geopolymer composites

期刊

CONSTRUCTION AND BUILDING MATERIALS
卷 184, 期 -, 页码 419-431

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.conbuildmat.2018.07.012

关键词

Alkali activated; Fly ash; Slag; Strain hardening; Multiple cracking; Micromechanics

资金

  1. Hong Kong-Guangzhou Technology and Innovation Partnership Programme [201807010055]
  2. National Science Foundation of China (NSFC) [51638008]
  3. Construction Industry Council Fund [K-ZJK2]
  4. Hong Kong PhD Fellowship Scheme (HKPFS)

向作者/读者索取更多资源

This paper investigates the tensile behavior of the recently developed ambient-cured one-part engineered geopolymer composites (EGC) incorporating different hybrid combinations of steel (ST) and poly-ethylene (PE) fibers while maintaining the total fiber volume at 2%. Two ambient-cured geopolymer matrices were manufactured: the first was synthesized by activating slag (100%) while the second was a blended of 50% fly ash and 50% slag. The effects of using different precursor materials and hybridization content on the matrix and composite properties of EGC including workability, density, compressive strength, matrix fracture properties (elastic modulus, fracture toughness and crack tip toughness), tensile response and matrix microstructure were evaluated. The effect of 212 mu m sand addition on the matrix and composite properties of the hybrid composite 1.5% PE and 0.5% ST was also assessed. It was found that the slag based EGCs exhibited a relatively better tensile response (i.e. strain hardening and multiple cracking behaviors) compared to the blended EGC composites although they achieved a comparable compressive strength. SEM observations revealed that the slag geopolymer matrix was relatively denser and more compacted compared to the blended geopolymer matrix. The sand addition impaired the strain hardening and multiple cracking behaviors of both slag and blended EGC yet increased the compressive strength and enhanced the fracture properties of the geopolymer matrices. (C) 2018 Elsevier Ltd. All rights reserved.

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