PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
April 19, 2026Case Studies in Construction Materials0 citationsOpen Access

Effect of concrete properties and FRP strengthening on rebar mass loss under accelerated corrosion: Experimental investigation and empirical modeling

View Full Paper
AHAlireza HatambeigyIsfahan University of TechnologyDMDavood MostofinejadIsfahan University of TechnologyASAlireza SaljoughianIsfahan University of Technology

Key Points

  • The research aims to examine how concrete properties and FRP strengthening influence mass loss in rebars subjected to accelerated corrosion.
  • Conducted an experimental program on 24 cubic specimens with four longitudinal rebars each
  • Varied concrete compressive strength, cover depth, and electrolyte type during experiments
  • Used impressed-current method to induce accelerated corrosion
  • Compared two FRP strengthening techniques: EBR and EBROG
  • Developed a novel empirical model validated against 48 datasets
  • Higher concrete compressive strength and increased cover depth significantly reduced rebar mass loss
  • Specimens with sodium chloride exposure showed greater mass loss than those with calcium chloride
  • The EBROG method resulted in lower mass loss compared to the EBR method
  • The new empirical model indicated a 97.1% coefficient of determination, surpassing Faraday's law accuracy

Abstract

This study examines the influence of key parameters on the mass loss of reinforcing bars in reinforced concrete (RC) specimens subjected to accelerated corrosion via the impressed-current method, whereas Faraday’s law often fails to predict mass loss in RC specimens accurately. To address this gap, an experimental program was conducted on 24 cubic specimens, each containing four longitudinal rebars. The investigated variables included concrete compressive strength (25 and 40 MPa), concrete cover depth (20, 35, and 50 mm), electrolyte type (sodium chloride or calcium chloride), and exposure duration. The influence of the strengthening method with fiber-reinforced polymer (FRP) was also investigated, using the conventional externally-bonded reinforcement (EBR) and externally-bonded reinforcement on grooves (EBROG) techniques. Results indicated that higher compressive strength and increased cover depth substantially reduced rebar mass loss. Specimens exposed to sodium chloride exhibited greater mass loss than those exposed to calcium chloride. The EBROG method consistently outperformed the conventional EBR technique, resulting in lower mass loss, attributable to improved bonding and reduced microcracking. A novel empirical model was developed through nonlinear regression, integrating experimental data with supplementary datasets from the literature, and validated using 48 independent datasets. The model incorporates concrete compressive strength, cover depth, and the electrochemical exposure index (it/r). The model achieved a coefficient of determination of 97.1%, with 97% of predictions within a 30% error margin, significantly exceeding the performance of Faraday’s law, which yielded an R² of 79.9% and 63% of predictions within the same error margin.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Hatambeigy et al. (2026) studied this question.

synapsesocial.com/papers/69e470a4010ef96374d8d969https://doi.org/10.1016/j.cscm.2026.e06083
Ask AI
Helpful
Bookmark
Share
View Full Paper