Assessment of bonding, durability, and low-temperature performance of cement-based rapid patching materials for pavement repair

被引:5
作者
Gholami, Shayan [1 ]
Hu, Jiong [2 ]
Kim, Yong-Rak [1 ]
机构
[1] Texas A&M Univ, Zachry Dept Civil & Environm Engn, College Stn, TX USA
[2] Univ Nebraska Lincoln, Dept Civil & Environm Engn, Lincoln, NE 68588 USA
关键词
Concrete pavement repair; durability; alkali-silica reaction; low ambient temperature; drying shrinkage; bonding; CONCRETE; STRENGTH; HYDRATION;
D O I
10.1080/10298436.2022.2120990
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
A high-performance concrete rapid patching repair material needs to develop high early strength to satisfy traffic opening requirements, yet provides sufficient durability to sustain different environmental conditions and primary deterioration mechanisms for full-depth concrete repair. In this study, a set of experiments was conducted to evaluate the performance of developed pavement repair mixtures subjected to different environmental conditions, including low ambient temperature, highly reactive siliceous aggregate, wet/dry cycling, and moisture loss. Full-scale slab patching was also carried out to assess the rapid patching mixtures' constructability, compatibility, and interface bonding with the concrete substrate. Patching materials with a reduced cement content and Type IP cement exhibited a lower drying shrinkage rate and less deterioration from wet/dry cycles compared with commonly used patching mixtures that typically use high cement content and Type I cement. The tendency of alkali-silica reaction deterioration was reduced significantly by replacing 50% Type III cement with Type IP cement. The rapid patching mixtures generally displayed a high degree of early-age shrinkage but with satisfactory compatibility and good bonding with the concrete substrate. Test results also indicate that Type III cement-based rapid patching mixtures can be a promising option to reduce traffic closure duration at lower ambient temperatures.
引用
收藏
页数:11
相关论文
共 27 条
  • [21] MMA-based fast-curing repair materials suitable for low-temperature application
    He, Yashu
    Wang, Zhenyang
    Wen, Fengyu
    Sirotin, Igor S.
    Mu, Jianxin
    Kireev, Vyacheslav V.
    JOURNAL OF POLYMER ENGINEERING, 2022, 42 (04) : 343 - 350
  • [22] Performance and risk assessment of alinite cement-based materials from municipal solid waste incineration fly ash (MSWIFA)
    Xiaolu Guo
    Huisheng Shi
    Kai Wu
    Zhenghui Ju
    Warren A. Dick
    Materials and Structures, 2016, 49 : 2383 - 2391
  • [23] Energy saving benefit, mechanical performance, volume stabilities, hydration properties and products of low heat cement-based materials
    Wang, L.
    Dong, Y.
    Zhou, S. H.
    Chen, E.
    Tang, S. W.
    ENERGY AND BUILDINGS, 2018, 170 : 157 - 169
  • [24] Performance and risk assessment of alinite cement-based materials from municipal solid waste incineration fly ash (MSWIFA)
    Guo, Xiaolu
    Shi, Huisheng
    Wu, Kai
    Ju, Zhenghui
    Dick, Warren A.
    MATERIALS AND STRUCTURES, 2016, 49 (06) : 2383 - 2391
  • [25] Insight of key parameters in freeze-thaw damage on the performance of cement-based materials: A comparative study with rapid-freeze method
    Chen, Siyuan
    Liu, Rui
    Xiao, Huigang
    Wang, Wei
    COLD REGIONS SCIENCE AND TECHNOLOGY, 2023, 206
  • [26] Effects of Nitrite/Nitrate-Based Accelerators on Strength and Deformation of Cementitious Repair Materials under Low-Temperature Conditions
    Choi, Heesup
    Inoue, Masumi
    Choi, Hyeonggil
    Lim, Myungkwan
    Kim, Jihoon
    MATERIALS, 2023, 16 (07)
  • [27] Gradient erosion mechanism of ultra-low water binder ratio cement-based materials (ULWC) at low temperature: From molecular structure to macroscopic pore structure
    Feng, Yuan
    Yu, Min
    Liu, Teng
    Wang, Zhiyu
    Dong, Enlai
    Fan, Dingqiang
    Yu, Rui
    JOURNAL OF BUILDING ENGINEERING, 2024, 96