<p>This study investigates the performance of three commonly used waterproof bonding layer materials for steel bridge decks—solvent-based rubber asphalt, methyl methacrylate (MMA) resin, and epoxy resin—through surface energy theory, pull-off tests, and interlayer shear tests. The results indicate that MMA resin exhibits the highest surface energy parameters, followed by epoxy resin, while solvent-based rubber asphalt shows the lowest values. Pull-off tests reveal that epoxy resin achieves peak bond strength (10.22&#xa0;MPa) after 60&#xa0;h of curing at 25&#xa0;°C, whereas solvent-based rubber asphalt performs best at an application rate of 0.4&#xa0;kg/m<sup>2</sup>. Interlayer shear tests demonstrate that epoxy resin provides the highest shear strength, which increases with loading rate but decreases significantly at elevated temperatures. Additionally, temperature significantly affects bonding performance, with epoxy and MMA resins outperforming solvent-based rubber asphalt under high-temperature conditions. This research provides a theoretical basis for material selection and construction parameter optimization of waterproof bonding layers for steel bridge decks.</p>

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Research on the performance of different waterproof bonding layer materials for steel bridge decks

  • Huang Biao,
  • Shi Jie,
  • Chen Songqiang

摘要

This study investigates the performance of three commonly used waterproof bonding layer materials for steel bridge decks—solvent-based rubber asphalt, methyl methacrylate (MMA) resin, and epoxy resin—through surface energy theory, pull-off tests, and interlayer shear tests. The results indicate that MMA resin exhibits the highest surface energy parameters, followed by epoxy resin, while solvent-based rubber asphalt shows the lowest values. Pull-off tests reveal that epoxy resin achieves peak bond strength (10.22 MPa) after 60 h of curing at 25 °C, whereas solvent-based rubber asphalt performs best at an application rate of 0.4 kg/m2. Interlayer shear tests demonstrate that epoxy resin provides the highest shear strength, which increases with loading rate but decreases significantly at elevated temperatures. Additionally, temperature significantly affects bonding performance, with epoxy and MMA resins outperforming solvent-based rubber asphalt under high-temperature conditions. This research provides a theoretical basis for material selection and construction parameter optimization of waterproof bonding layers for steel bridge decks.