Numerical simulation of the performance of GRS walls considering freeze-thaw cycles

被引:2
|
作者
Ding, L. Q. [1 ]
Cui, F. L. [1 ]
Xiao, C. Z. [1 ]
机构
[1] Hebei Univ Technol, Sch Civil & Transportat Engn, Tianjin, Peoples R China
基金
中国国家自然科学基金;
关键词
Geosynthetics; GRS walls; Freeze-thaw cycles; Deformation; Hysteresis; REINFORCED RETAINING WALLS; FROST HEAVE; BRIDGE ABUTMENTS; CASE-HISTORY; DATA-BASE; TEMPERATURE; MODEL; FAILURE; RECOMMENDATIONS; MECHANISMS;
D O I
10.1680/jgein.22.00368
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
In practice, little attention has been paid directly to freeze-thaw (FT) cycles during the design and analysis of geogrid-reinforced soil (GRS) walls due to a lack of relevant literature. This study investigates the pavement vertical deformation (s), panel lateral deformation (d), lateral earth pressure (sigma(h)), and geogrid strain (epsilon) of a field GRS wall using an ABAQUS-based numerical model considering variations of the recorded five-year ambient temperature (T-R). Numerical results show that the s distribution follows a convex shape instead of the initial concave shape after FT cycles and can be divided into high, transition, and stable deformation zones. FT action alters both location and amplitude of the maximum d within the first two cycles, making the d distribution evolve from a J-shaped curve into an S-shaped one. During freezing, the developments of s and d are coordinated and can be described using a unified model; sigma(h) is larger than the Rankine active earth pressure; epsilon state depends on the interplay of two factors resulting from d and frost heave force. Furthermore, the hysteresis of s, d, sigma(h), and epsilon with T-R was discussed and several beneficial suggestions were proposed for GRS walls to avoid such FT destruction.
引用
收藏
页码:296 / 313
页数:18
相关论文
共 50 条
  • [1] Numerical Simulation of Reinforced Concrete Piers after Seawater Freeze-Thaw Cycles
    Teng, Fei
    Zhang, Yueying
    Yan, Weidong
    Wang, Xiaolei
    Li, Yanfeng
    COATINGS, 2022, 12 (12)
  • [2] Numerical simulation of degradation of porous building materials caused by freeze-thaw cycles
    Madera, Jiri
    Kruis, Jaroslav
    4TH CENTRAL EUROPEAN SYMPOSIUM ON BUILDING PHYSICS (CESBP 2019), 2019, 282
  • [3] Performance of laboratory geogrid-reinforced retaining walls under freeze-thaw cycles
    Cui, F.
    Xiao, C.
    Han, J.
    Gao, S.
    Tian, W.
    GEOSYNTHETICS INTERNATIONAL, 2022, 29 (01) : 81 - 98
  • [4] Numerical Simulation of Freeze-Thaw Biopharmaceutical Processes
    Iannuccelli, Marco
    Suzzi, Daniele
    Sirnik, Bernhard
    Rinderhofer, Alexander
    Khinast, Johannes G.
    ICHEAP-10: 10TH INTERNATIONAL CONFERENCE ON CHEMICAL AND PROCESS ENGINEERING, PTS 1-3, 2011, 24 : 907 - +
  • [5] FREQUENCY OF FREEZE-THAW CYCLES
    HERSHFIELD, DM
    JOURNAL OF APPLIED METEOROLOGY, 1974, 13 (03): : 348 - 354
  • [6] The Effect of Freeze-Thaw Cycles on the Mechanical Performance of RAC
    Rangel, C. S.
    Amario, M.
    Pepe, M.
    Martinelli, E.
    Toledo Filho, R. D.
    PROCEEDINGS OF ITALIAN CONCRETE DAYS 2018, 2020, 42 : 301 - 311
  • [7] Numerical Simulation of the Effect of Freeze-Thaw Cycles on the Axial Compression Strength of Rubber Concrete
    Hao, Dingyi
    Huang, Xiaoyu
    Li, Houmin
    Cao, Zhou
    Yang, Zijiang
    Pei, Xianfeng
    Min, Kai
    Liu, Cai
    Li, Wenchao
    Zhang, En
    Shen, Jie
    MATERIALS, 2023, 16 (12)
  • [8] Numerical Simulation of the Effect of Freeze-Thaw Cycles on the Durability of Concrete in a Salt Frost Environment
    Li, Hao
    Zhang, Yuan
    Guo, Haolong
    COATINGS, 2021, 11 (10)
  • [9] Numerical simulation research on the micro failure mechanism of sandstone under freeze-thaw cycles
    Li, Tao
    Wu, Peng
    Hu, Shanchao
    Wu, Boyuan
    Chen, Zhanqing
    FRONTIERS IN EARTH SCIENCE, 2025, 13
  • [10] Seismic behavior of confined masonry walls subjected to freeze-thaw cycles
    Niu, Lihua
    Zheng, Shansuo
    Zheng, Hao
    Zhou, Yan
    Pei, Pei
    CONSTRUCTION AND BUILDING MATERIALS, 2018, 186 : 131 - 144