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Experimental Investigations on Bond Behavior between FRP Bars and Advanced Sustainable Concrete. | LitMetric

Experimental Investigations on Bond Behavior between FRP Bars and Advanced Sustainable Concrete.

Polymers (Basel)

Guangdong Provincial Key Laboratory of Durability for Marine Civil Engineering, Shenzhen University, Shenzhen 518060, China.

Published: March 2022

AI Article Synopsis

  • This study introduces a new sustainable concrete mixture made from LC3, seawater, sea sand, and recycled aggregates as an eco-friendly alternative to traditional concrete, aimed at addressing resource shortages and carbon emissions.
  • An investigation into the bond properties between this sustainable concrete and sand-coated CFRP bars was conducted using pull-out tests to analyze failure mechanisms and bond performance, finding that bond strength peaked at approximately 15 MPa.
  • A multisegmented modified bond-slip model was created to represent the bond behavior in four stages, revealing that the advanced concrete’s bond behavior is similar to that of conventional concrete, although bond strength decreased as the LC3 content increased above 50%.

Article Abstract

In response to resource shortage and carbon dioxide emissions, an innovative type of sustainable concrete containing LC3, seawater, sea sand, and surface-treated recycled aggregates is proposed in this study to replace traditional concrete. To understand the bond properties between the sustainable concrete and CFRP bars, an investigation was conducted on the bond behavior between sand-coated CFRP bars and advanced sustainable concrete. Pull-out tests were carried out to reveal the failure mechanisms and performance of this bond behavior. The results showed that the slip increased monotonically along with the increase in confinement. The bond strength increased up to approximately 15 MPa, and the critical ratio of C/D was reached. The critical ratio approached 3.5 for the Portland cement groups, while the ratio was determined as approximately 4.5 when LC3 was introduced. When the proportion of LC3 reached 50%, there was a reduction in bond strength. A multisegmented modified bond-slip model was developed to describe the four-stage bond behavior. In terms of bond strength and slip, the proposed advanced concrete exhibited almost identical bond behavior to other types of concrete.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8950607PMC
http://dx.doi.org/10.3390/polym14061132DOI Listing

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