Damage Mechanism and Calculation Method for Double-column RC Bridge Piers Subjected to Truck Impact

被引:0
|
作者
Wang S.-C. [1 ]
Pang X.-F. [1 ]
Zhang G. [1 ]
Fu Y.-Q. [2 ]
Yuan Z.-Y. [3 ]
机构
[1] School of Highway, Chang'an University, Shaanxi, Xi'an
[2] Central Research Institute of Building and Construction Co. Ltd., MCC Group, Beijing
[3] CCCC First Highway Consultants Co. Ltd., Shaanxi, Xi'an
基金
中国国家自然科学基金;
关键词
bridge engineering; calculation method; damage mechanism; double-column RC bridge piers; numerical simulation;
D O I
10.19721/j.cnki.1001-7372.2024.05.006
中图分类号
学科分类号
摘要
To study the damage mechanism and damage mode of double-column RC piers impacted by trucks, and to provide computational methods for the design of piers to resist collision, the power analysis software LS-DYNA was used to establish a refined finite element model of double-column RC piers impacted by trucks. Additionally, a simplified mass model of frame piers is used to replace the entire bridge model, a simplified model of the three-impulse load is introduced as a loading mechanism, and the finite element model and numerical algorithms are validated. The effectiveness of the finite element model and numerical algorithm is verified. The load-structure response analysis of double-column RC piers is performed by taking into account (among others) the influence of the truck model, vehicle weight, vehicular speed, and pier size. The entire process of damage and destruction of the piers under the impact of trucks is obtained, and the detailed evolution paths from the generation of bending cracks and the development of bending-shear cracks to shear destruction are revealed. The damage mechanism of double-column RC abutment impacted by trucks is clarified, and the dynamic response of the abutment is affected by both the stress wave propagation and inertia, and the maximum shear force and bending moment of the impacted abutment cross-section appear before and after the moment when the impact load reaches the peak value. Under different working conditions, the damage mode of the pier and the internal force response of the cross-section were analyzed, and the damage mode of the double-column RC pier was divided into three basic types: bending damage, shear damage, and complete collapse. The results obtained using the proposed truck impact double-column RC abutment dynamic shear capacity calculation method, and dynamic shear force and dynamic bending moment calculation method of the abutment cross-section show that the dynamic shear capacity of the abutment and the tensile strength of the concrete are directly proportional to the squared diameter of the abutment cross-section. The overall fit between the calculated internal force and the finite element simulation values in the cross-sections of the impacted piers is more than 95%, which can be used for the impact-resistant design calculation of double-column RC piers. © 2024 Chang'an University. All rights reserved.
引用
收藏
页码:108 / 121
页数:13
相关论文
共 30 条
  • [1] ZHANG Gang, ZHAO Xiao-cui, SONG Chao-jie, Et al., Review on Bridge Fire Science and Safety Guarantee Technology, Journal of Traffic and Transportation Engineering, 23, 6, pp. 94-113, (2023)
  • [2] ZHANG Yu-ye, LI Qing-hua, FAN Wei, Et al., Damage analysis and assessment of precast segmental columns subjected to vehicle collision, Journal of Vibration and Shock, 41, 24, pp. 150-158, (2022)
  • [3] SUN W B, FAN W, YANG C C, Et al., Lessons learned from vehicle collision accident of Dongguofenli Bridge: FE modeling and analysis, Engineering Structures, 244, (2021)
  • [4] HE Shui-tao, LU Xin-zheng, LU Xiao, Et al., Tests for collision between over-high trucks and steel bridge superstructures, Journal of Vibration and Shock, 31, 5, pp. 31-35, (2012)
  • [5] CHEN L, WU H, FANG Q, Et al., Full-scale experimental study of a reinforced concrete bridge pier under truck collision, Journal of Bridge Engineering, 26, 8, (2021)
  • [6] HENG K, CHEN T L, LI R W, Et al., Dynamic behaviors and equivalent static force of double-column pier under horizontal impact, Structures, 49, pp. 1093-1111, (2023)
  • [7] FAN Wei, MAO Wei, PANG Yu-tao, Et al., Reliability analysis of reinforced concrete column bridge piers subjected to vehicle collisions, China Journal of Highway and Transport, 34, 2, pp. 162-176, (2021)
  • [8] CHEN Lin, ZENG Yu-ye, YAN Zefeng, Et al., Dynamic response and damage characteristics of a RC pier under vehicle impacting, Journal of Vibration and Shock, 38, 13, pp. 261-267, (2019)
  • [9] AUYEUNG S, ALIPOUR A, SAINI D., Performance-based design of bridge piers under vehicle collision, Engineering Structures, 191, pp. 752-765, (2019)
  • [10] DO T V, PHAM T M, HAO H., Dynamic responses and failure modes of bridge columns under vehicle collision, Engineering Structures, 156, pp. 243-259, (2018)