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Fracture Behavior of High Volume Fly Ash-Self Consolidating Concrete

Research output: Contribution to journalArticlepeer-review

Abstract

Concrete sustainability can be improved by substituting recycled material for conventional material products. Incorporating fly Ash in a concrete mix design supports cement and concrete producers in reducing the greenhouse gas emission associated with manufacturing cement and concrete. This study was conducted to develop a new cementitious material using high volume fly Ash content. A replacement of more than 50% was utilized to achieve sustainable design and significantly reduce a myriad of environmental impacts. Fracture energy of high volume fly ash–self consolidating concrete (HVFA-SCC) was examined. For this purpose, four mixes with 0%, 50%, 60%, and 70% fly Ash as cement replacements were studied. Hydrated lime was incorporated in the mixture to enhance the hydration process of the fly ash. In all, 16 fracture notched beams were investigated under three –point bending test. The rheological and mechanical properties of the HVFA-SCC were measured and evaluated. Furthermore, a comparison of the fracture energy provisions of different design codes and data reported in the literature was made.

Original languageAmerican English
JournalProceedings of the 4th International Conference on Sustainable Construction Materials and Technologies (2016, Las Vegas, NV)
Volume2016-August
StatePublished - Aug 1 2016
Event4th International Conference on Sustainable Construction Materials and Technologies, SCMT 2016 - Las Vegas, United States
Duration: Aug 7 2016Aug 11 2016

ASJC Scopus Subject Areas

  • Civil and Structural Engineering
  • Building and Construction
  • Mechanics of Materials
  • General Materials Science

Keywords

  • Cement and concretes
  • Cementitious materials
  • Cements
  • Concrete beams and girders
  • Concrete mix design
  • Conventional materials
  • Fly ash
  • Fracture
  • Fracture energy
  • Greenhouse gases
  • High volume fly ash
  • Hydrated lime
  • Hydration
  • Lime
  • Point bending tests
  • Rheological and mechanical properties
  • Self-consolidating concrete
  • Sustainable development

Disciplines

  • Structural Engineering

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