Yijia Li, Xianjie Hao, Yuguang Chen, Huaixiang Yang, Hang Li, Tiangrui Pang, Xinyu Gao
2026.4.1Nanomaterials and Nanotechnology
Abstract
Waterproof dam concrete’s permeability stability in goaf waterlogged environments critically impacts coal mine safety and groundwater sustainability. Underwater immersion, weak infiltration pathways are formed at the joint interfaces of the composite structure (concrete-concrete), potentially triggering water damage incidents. Optimization research on interface anti-seepage performance is urgently required. This study focuses on the composite structure of waterproof concrete dams, analyzing permeability modification by nano SiO 2 /TiO 2 /Al 2 O 3 at varying percentages on bi-material specimens post-immersion. Gas permeability, Liquid-measured porosity test, Ultrasonic velocity, and SEM were performed to evaluate the permeability evolution and interface stability of nanomaterial-modified concrete after different days of water immersion. Results indicate that post 14-day immersion, the permeability of ordinary concrete monomer specimens (OC) and bi-material specimens (C-C) increased to 0.236×10 -5 μm 2 and 0.760×10 -3 μm 2 , respectively, corresponding to degradation levels of 220.5% and 88.5%. Moreover, the permeability of C-C remained two orders of magnitude higher than that of OC, and their degradation followed a three-stage pattern: rapid amplification, moderate development, and gradual stabilization. Nanomaterial incorporation suppressed permeability deterioration, particularly the 0.5% TiO 2 group, showing optimal performance. Post-immersion, the 0.5%TiO 2 group showed 0.236×10 -3 μm 2 permeability, representing a 69.0% improvement relative to the C-C. Other groups demonstrated modification effects of 55.9% for 0.5%Al 2 O 3 , 52.6% for 1.0%Al 2 O 3 , 42.1% for 1.0%TiO 2 , and 24.4% for 0.5%SiO 2 , while the addition of 1.0%SiO 2 exhibited no significant improvement. Liquid-measured and ultrasonic tests showed the 0.5% TiO 2 group had 16.4% lower porosity and 14.2% higher wave velocity post-immersion. SEM analysis demonstrated that nano-TiO 2 effectively suppressed the expansion of interface cracks, and image binarization processing revealed a 49.6% reduction in fracture surface porosity in the 0.5%TiO 2 group, resulting in a denser interface microstructure and enhanced permeability stability. This study establishes key technical foundations for optimizing composite structural materials for waterproof concrete dams, thereby enhancing permeability stability in underground storage facilities and related engineering structures.
Citation format
LI, Yijia, et al. Interfacial permeability evolution and nano-modification effect of “concrete-nanoconcrete” bi-material under water immersion. Nanomaterials and Nanotechnology, 2026, 16.