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Mechanical properties and microstructure of reactive powder concrete using ternary pozzolanic materials at elevated temperature

  • Hyoung seok So
  • , Hong seok Jang
  • , Janchivdorj Khulgadai
  • , Seung young So*
  • *Corresponding author for this work
  • Seonam University
  • Jeonbuk National University

Research output: Contribution to journalJournal articlepeer-review

Abstract

To provide fundamental data on developing an economical and practical Reactive Powder Concrete (RPC), a modified RPC was made in this study. This modified RPC significantly reduced the content of cement and silica fume compared to the conventional RPC mixture by the combination of ternary pozzolanic materials (silica fume, blast furnace slag, and fly ash). A series of fire tests was conducted on modified RPC specimens, and their mechanical properties and microstructures were investigated under high temperatures. The results clearly showed that the mechanical performance of the modified RPC under high temperatures was superior to that of the conventional RPC mixture (SF25 type) with only silica fume (SF/C = 25%). The residual compressive, flexural, and tensile strength of the modified RPC after exposure to 1000oC resulted in more than 62 MPa, 8 MPa, and 4 MPa, respectively. The range of 400~800℃ may be regarded as the critical temperature range for the strength loss of the modified RPC, which led to significant changes in the microstructure of the RPC matrix, as shown in the results of the pore structure analysis and XRay Diffraction (XRD).

Original languageEnglish
Pages (from-to)1050-1057
Number of pages8
JournalKSCE Journal of Civil Engineering
Volume19
Issue number4
DOIs
StatePublished - 2015.04.14

Keywords

  • high temperature
  • mechanical properties
  • pore structure
  • reactive powder concrete
  • ternary pozzolanic materials

Quacquarelli Symonds(QS) Subject Topics

  • Engineering - Civil & Structural

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