Numerical Simulation on Cave Forming and Bearing Characteristics of Tunnel Type Anchorage in Fractured Rock Mass

YU Jia-fu, WU Yong-jin, WANG Teng-fei, ZHANG Yi-hu

Journal of Changjiang River Scientific Research Institute ›› 2022, Vol. 39 ›› Issue (6) : 101-106.

PDF(3811 KB)
PDF(3811 KB)
Journal of Changjiang River Scientific Research Institute ›› 2022, Vol. 39 ›› Issue (6) : 101-106. DOI: 10.11988/ckyyb.20220310
ROCK-SOIL ENGINEERING

Numerical Simulation on Cave Forming and Bearing Characteristics of Tunnel Type Anchorage in Fractured Rock Mass

  • YU Jia-fu1, WU Yong-jin2, WANG Teng-fei1, ZHANG Yi-hu2
Author information +
History +

Abstract

Tunnel type anchorage has wide application range in the building of suspension bridge as it is more economical and environmentally friendly than gravity anchorage. The tunnel type anchorage of a large-span suspension bridge on a railway in southwest China bears a super-large main cable load of 430,000 kN in the IV-V grade engineering rock mass. In the present research, the cave forming characteristics and the surrounding rock response characteristics under the main cable load and overload of the tunnel type anchorage were analyzed by using 3D numerical simulation method. Results unveil that according to the current support design, the fractured rock mass is in a state of slight squeezing deformation after the excavation of anchorage hole. The surrounding rock of tunnel type anchorage mainly displays elastic deformation under main cable load, and the displacement increment of the anchor plug body is only a few millimeters. The deformation of surrounding rock is significantly affected by the lithology of the stratum, and the gradient of surrounding rock displacement around the anchor plug body is large. Under overload, the plastic zone of surrounding rock of the anchor plug body gradually develops from the back anchor surface to the middle and front part along the surrounding rock of the anchor plug body, and the final failure mode is the shear failure of surrounding rock from the back anchor surface to the front anchor surface of anchor plug body. Tunnel type anchorage structure also has strong adaptability to rock mass environment with inferior basic quality.

Key words

fractured rock mass / large-span suspension bridge / tunnel type anchorage / cave forming characteristics / bearing characteristics / overload capacity

Cite this article

Download Citations
YU Jia-fu, WU Yong-jin, WANG Teng-fei, ZHANG Yi-hu. Numerical Simulation on Cave Forming and Bearing Characteristics of Tunnel Type Anchorage in Fractured Rock Mass[J]. Journal of Changjiang River Scientific Research Institute. 2022, 39(6): 101-106 https://doi.org/10.11988/ckyyb.20220310

References

[1] 雷俊卿,郑明珠,徐恭义. 悬索桥设计[M]. 北京:人民交通出版社, 2002.
[2] 刘建新,胡兆同. 大跨度吊桥[M]. 北京:人民交通出版社, 1995.
[3] 刘新荣,韩亚峰,景 瑞,等. 隧道锚承载特性、变形破坏特征及典型案例分析[J]. 地下空间与工程学报,2019, 15(6): 1780-1791.
[4] 张宜虎,邬爱清,周火明,等. 悬索桥隧道锚承载能力和变形特征研究综述[J]. 岩土力学,2019, 40(9): 3576-3584.
[5] ZHANG Qi-hua, LI Yu-jie, YU Mei-wan, et al. Study of the Rock Foundation Stability of the Aizhai Suspension Bridge over a Deep Canyon Area in China[J]. Engineering Geology, 2015, 198: 65-77.
[6] 邬爱清,周火明,张奇华,等. 悬索桥隧道锚岩石力学关键技术及应用[M]. 北京: 科学出版社, 2019.
[7] WU Xiang-chao, LIU Xin-rong, LI Dong-liang. Reduced Scale Field Test on Tunnel Anchorage with Soft Surrounding Rock[J]. Electronic Journal of Geotechnical Engineering, 2015, 20(26): 12811-12833.
[8] LI Yu-jie, LUO Rong, ZHANG Qi-hua, et al. Model Test and Numerical Simulation on the Bearing Mechanism of Tunnel-type Anchorage[J]. Geomechanics and Engineering, 2017, 12(1): 139-160.
[9] 邬爱清,彭元诚,黄正加,等. 超大跨度悬索桥隧道锚承载特性的岩石力学综合研究[J]. 岩石力学与工程学报,2010,29(3): 433-441.
[10] 张奇华,余美万,喻正富,等. 普立特大桥隧道锚现场模型试验研究:抗拔能力试验[J]. 岩石力学与工程学报,2015,34(1): 93-103.
[11] 李维树,刘 铮,姜顺龙,等. 几江长江大桥隧道锚原位缩尺模型试验研究[J]. 地下空间与工程学报,2017, 13(增2): 585-591.
[12] 董志宏,张奇华,丁秀丽,等. 矮寨悬索桥隧道锚碇稳定性数值分析[J]. raybet体育在线 院报,2005,22(6): 60-64.
[13] 江 南,黄 林,冯 君,等.铁路悬索桥隧道式锚碇设计计算方法研究[J]. 岩土力学,2020,41(3):1-12.
[14] 胡 波,曾钱帮,饶 旦,等. 锚碇-围岩系统在拉剪复合应力条件下的变形规律及破坏机制研究:以坝陵河特大岩锚悬索桥为例[J]. 岩石力学与工程学报,2007, 26(4): 712-719.
[15] 汤 华,熊晓荣,邓 琴,等. 普立特大桥隧道式锚碇围岩系统的变形规律及破坏机制[J]. 上海交通大学学报,2015, 49(7): 961-967.
[16] 王东英,汤 华,尹小涛,等. 基于应变软化的隧道锚渐进破坏过程探究[J]. 岩石力学与工程学报,2019, 38(增刊2): 3448-3459.
[17] 廖明进,王全才,袁从华,等.基于楔形效应的隧道锚抗拔承载能力研究[J]. 岩土力学,2016,37(1):185-192.
[18] HOEK E. Big Tunnels in Bad Rock[J]. Journal of Geotechnical and Geoenvironmental Engineering, 2002, 127(9): 726-740.
PDF(3811 KB)

Accesses

Citation

Detail

Sections
Recommended

/

Baidu
map