Shear Performance Degradation of Fiber-Reinforced Recycled Aggregate Concrete Beams Under Salt Freeze-Thaw Cycles
Shefeng Guo1,2, Jin Wu1, Jingmiao Zhao1
1College of Civil Aviation, Nanjing University of Aeronautics and Astronautics, Nanjing 211106, China.
Abstract:
In saline soil and alpine regions of northwest China, fiber-reinforced recycled aggregate concrete (FR-RAC) beams are subjected to coupled degradation from a chloride-sulfate composite salt attack and freeze-thaw cycling. Existing studies predominantly focus on natural aggregate concrete in freshwater environments or single-salt solutions, with limited documentation on the shear performance of FR-RAC beams after freeze-thaw exposure in chloride-sulfate composite salt solutions. To investigate the durability degradation patterns of FR-RAC beams in Xinjiang's saline soil regions, two exposure environments (pure water and 5% NaCl + 2.0% Na2SO4 composite salt solution) were established. Shear performance tests were conducted on nine groups of FR-RAC beams after 0-175 freeze-thaw cycles, with measurements focusing on failure modes, cracking loads, and ultimate shear capacities. The results revealed that under composite salt freeze-thaw conditions: after 100 cycles, the cracking load and shear capacity of tested beams decreased by 39.8% and 22.2%, respectively, compared to unfrozen specimens representing reductions 29.6% and 82.0% greater than those in freshwater environments; at 175 cycles, cumulative damage intensified, with total reductions reaching 56.8% (cracking load) and 36.1% (shear capacity). A shear capacity degradation prediction model for FR-RAC beams under composite salt freeze-thaw coupling was developed, accounting for concrete strength attenuation and interfacial bond degradation. Model validation demonstrated excellent agreement between predicted and experimental values, confirming its robust applicability.
Related Concept Videos
Frost Action on Concrete
This freeze-thaw cycle primarily causes surface scaling, where...
Frost Resistant Concrete
Introducing microscopic air bubbles into the concrete mix through air entrainment creates small voids that accommodate ice expansion, thereby reducing internal pressures and preventing cracking. The optimal amount of...
Unsoundness of Aggregate due to Volume Change
Fatigue Strength of Concrete
Effect of Sea Water on Concrete
Concrete in areas between tide marks,...
Effects of Air-entrainment in Concrete


