Damage and Energy Evolution at the Sandstone–Concrete Interface Under Freeze–Thaw Action

Purpose: To investigate the mechanical-damage behavior and energy-evolution characteristics of the sandstone–concrete interface when subjected to freeze–thaw cycles. Method: Uniaxial compression tests were conducted on sandstone–concrete-composite specimens subjected to 0, 10, and 20 freeze–thaw cycles. The effects of interface angle and roughness were considered, and the stress–strain behavior, elastic modulus, failure modes, and energy-evolution characteristics were systematically analyzed. Results: Freeze–thaw cycles significantly reduce the strength and stiffness of the sandstone–concrete interface and intensify the differences in its mechanical performance. Increasing interface roughness enhances mechanical interlocking and delays damage development; however, damage continues to accumulate with repeated freeze–thaw cycles. Conclusions: Freeze–thaw cycling is a key factor governing the degradation of sandstone–concrete interface performance, while interface angle and roughness exert significant influences on the damage-evolution process.

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Publication Details

Journal
Buildings
Published
2026-09-28
DOI
https://doi.org/10.3390/buildings16193851
Primary Topic
Rock Mechanics and Modeling
Type
article
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article

Damage and Energy Evolution at the Sandstone–Concrete Interface Under Freeze–Thaw Action

Tong Min Jiang, Sheng-Jin Jiang, Yating Chen, Zhu Qiao-yu et al.
Buildings
Rock Mechanics and Modeling
article

Damage and Energy Evolution at the Sandstone–Concrete Interface Under Freeze–Thaw Action

Tong Min Jiang, Sheng-Jin Jiang, Yating Chen, Zhu Qiao-yu, Shuo Zhang, Jia-Jun Duan, Qi-Bo Zhang, Xiao-Sui Liu
article en

Abstract

Purpose: To investigate the mechanical-damage behavior and energy-evolution characteristics of the sandstone–concrete interface when subjected to freeze–thaw cycles. Method: Uniaxial compression tests were conducted on sandstone–concrete-composite specimens subjected to 0, 10, and 20 freeze–thaw cycles. The effects of interface angle and roughness were considered, and the stress–strain behavior, elastic modulus, failure modes, and energy-evolution characteristics were systematically analyzed. Results: Freeze–thaw cycles significantly reduce the strength and stiffness of the sandstone–concrete interface and intensify the differences in its mechanical performance. Increasing interface roughness enhances mechanical interlocking and delays damage development; however, damage continues to accumulate with repeated freeze–thaw cycles. Conclusions: Freeze–thaw cycling is a key factor governing the degradation of sandstone–concrete interface performance, while interface angle and roughness exert significant influences on the damage-evolution process.

BuildingsVol. 16(19)
North China University of Water Resources and Electric Power (CN), Yellow River Conservancy Technical Institute (CN)
Sustainable cities and communities
Openalex Percentile: Top 20%
Rock Mechanics and Modeling
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Damage and Energy Evolution at the Sandstone–Concrete Interface Under Freeze–Thaw Action — Tong Min Jiang, Sheng-Jin Jiang, et al. · Buildings (2026) | TGRS Research Map | TGRS