Home | About Journal  | Editorial Board  | Instruction | Subscription | Advertisement | Message Board  | Contact Us | 中文
MODERN TUNNELLING TECHNOLOGY 2024, Vol. 61 Issue (6) :55-63    DOI:
Current Issue | Next Issue | Archive | Adv Search << [an error occurred while processing this directive] | [an error occurred while processing this directive] >>
Calculation of Frost Heave Force and Analysis of Frost Heave Mechanism Induced by Water Accumulation in Voids behind Tunnel Lining in Cold-regions
(1. School of Civil and Hydraulic Engineering, Ningxia University, Yinchuan750021;2. School of Civil Engineering,Central South University,Changsha 410075)
Download: PDF (3383KB)   HTML (1KB)   Export: BibTeX or EndNote (RIS)      Supporting Info
Abstract This study investigates the issues of lining cracking and spalling caused by frost heave of accumulated water in voids behind lining in cold-region tunnels. Theoretical research on the calculation of frost heave force of accumulated water in voids behind tunnel lining was conducted. By introducing a frost heave force calculation model that accounts for drainage conditions, the freezing process of accumulated water in circular wedge-shaped voids under temperature fluctuations was analyzed, and the mechanism of frost heave force formation was revealed. The results show that the frost heave force increases with the height of the void but changes insignificantly with the void length. For voids outside the waterproof layer, the drainage coefficient is 0, and no frost heave force is generated during freezing.For voids inside the waterproof layer, when the drainage channel freezes first (drainage coefficient=1), the closer the drainage channel is to the bottom of the void, the larger the drainage coefficient and the bigger the frost heave force in the void. Freezing of water in the void begins at the thinnest edge and progresses toward thicker regions of the void. Under daily cyclic temperature fluctuations, the melting process of ice in the void is homology to the freezing process, that is ,the phenomenon of freezing and thrawing first. Under daily periodic fluctuations, the freeze-thaw and water recharge-freeze processes in voids inside the waterproof layer lead to a gradual increase in frost heave force.
Service
Email this article
Add to my bookshelf
Add to citation manager
Email Alert
RSS
Articles by authors
XU Peng1 YANG Ruisong1 WU Yimin2
KeywordsCold-region tunnels   Water accumulation in voids   Frost heave force   Drainage conditions     
Abstract: This study investigates the issues of lining cracking and spalling caused by frost heave of accumulated water in voids behind lining in cold-region tunnels. Theoretical research on the calculation of frost heave force of accumulated water in voids behind tunnel lining was conducted. By introducing a frost heave force calculation model that accounts for drainage conditions, the freezing process of accumulated water in circular wedge-shaped voids under temperature fluctuations was analyzed, and the mechanism of frost heave force formation was revealed. The results show that the frost heave force increases with the height of the void but changes insignificantly with the void length. For voids outside the waterproof layer, the drainage coefficient is 0, and no frost heave force is generated during freezing.For voids inside the waterproof layer, when the drainage channel freezes first (drainage coefficient=1), the closer the drainage channel is to the bottom of the void, the larger the drainage coefficient and the bigger the frost heave force in the void. Freezing of water in the void begins at the thinnest edge and progresses toward thicker regions of the void. Under daily cyclic temperature fluctuations, the melting process of ice in the void is homology to the freezing process, that is ,the phenomenon of freezing and thrawing first. Under daily periodic fluctuations, the freeze-thaw and water recharge-freeze processes in voids inside the waterproof layer lead to a gradual increase in frost heave force.
KeywordsCold-region tunnels,   Water accumulation in voids,   Frost heave force,   Drainage conditions     
Cite this article:   
XU Peng1 YANG Ruisong1 WU Yimin2 .Calculation of Frost Heave Force and Analysis of Frost Heave Mechanism Induced by Water Accumulation in Voids behind Tunnel Lining in Cold-regions[J]  MODERN TUNNELLING TECHNOLOGY, 2024,V61(6): 55-63
URL:  
http://www.xdsdjs.com/EN/      或     http://www.xdsdjs.com/EN/Y2024/V61/I6/55
 
No references of article
[1] ZHENG Bo1 WU Jian1 YUAN Ming2 TAO Weiming3 MU Yanhu4 GUO Rui1.Progress and Prospects of Cold Protection and Anti-Freezing Technologies for Tunnels in High-Altitude Cold Regions[J]. MODERN TUNNELLING TECHNOLOGY, 2024,61(2): 139-151
[2] WANG Zhijie1,2 XIE Shenghao1,2 ZHOU Feicong1,2 WANG Lei3 MA Zhifu4 YANG Changxian4.Study on Effectiveness and Suitability of Thermal Insulation Layer of Different Tunnel Drainage System Structures in Cold Reg[J]. MODERN TUNNELLING TECHNOLOGY, 2023,60(6): 211-219
[3] YU Jianyou1 JIANG Yifan2 LIN Ming2 LIU Jianqi1 CAI Libin2 JIANG Xinzheng2 WANG Zhijie2 ZHOU Ping2.Thickness Calculation Method for the Insulation Layer of the Tunnel in Cold Region Considering Seepage and Fissures[J]. MODERN TUNNELLING TECHNOLOGY, 2022,59(4): 108-117
[4] GUO Rui1, 2,3 ZHENG Bo2, 3 FANG Lin1, 4 WU Jian2, 3.Model Test Study on Distribution Characteristics of Longitudinal Temperature Field in Tunnels in Cold Regions[J]. MODERN TUNNELLING TECHNOLOGY, 2021,58(5): 129-139
[5] U Li1,2 SUN Yuan1,2 WANG Mingnian1,2.Research on the Calculation Method for Frost-Resistance Fortification Lengths of Tunnels in Cold Regions[J]. MODERN TUNNELLING TECHNOLOGY, 2021,58(4): 21-28
[6] WANG Yaqiong1 YANG Ming2 WANG Zhifeng1.Water-Captation and Heating Equipment for Treating Frost Damage
Caused by Local Water Leakage in Cold-Region Tunnels
[J]. MODERN TUNNELLING TECHNOLOGY, 2018,55(4): 204-209
[7] ZHANG Yuwei1 LI Youyun1,2 XIE Yongli1,2 ZAN Wenbo3.On Frost-Heave Calculation Model Based on a Broken Freeze-Thaw Circle and Its Influential Factors[J]. MODERN TUNNELLING TECHNOLOGY, 2017,54(6): 93-102
[8] .Roles and Structures of Cold-Proof Drainage Tunnels for Different Permafrost Tunnels[J]. MODERN TUNNELLING TECHNOLOGY, 2017,54(2): 1-8
[9] WANG Zhangqiong1 YAN E′chuan.Long-Term Stability of Tunnels Considering the Degradation Effects of FreezeThaw Damage to Surrounding Rock[J]. MODERN TUNNELLING TECHNOLOGY, 2017,54(2): 68-72
[10] SUN Ke-Guo- Xu-Yu-Ping- Chou-Wen-Ge- Zheng- Qiang.On Temperature Field Distribution and the Effects of Surrounding Rock Properties on Tunnels in Cold Regions[J]. MODERN TUNNELLING TECHNOLOGY, 2016,53(6): 67-72
[11] HUANG Ji-Hui- 1, 2 Xia-Cai-Chu- 1, 2 Han-Chang-Ling- 3 Li-Zhi-Hou- 4.Distribution and Simplified Calculation Method of the Frost Heaving Force of Highway Tunnels in Cold Regions[J]. MODERN TUNNELLING TECHNOLOGY, 2016,53(5): 63-70
[12] FENG Qiang- 1 Liu-Wei-Wei- 1 Jiang-Bin-Song- 2.Study on the Temperature Field and Insulation Layer Thickness of the Yuximolegai Tunnel[J]. MODERN TUNNELLING TECHNOLOGY, 2016,53(5): 78-84
[13] YUAN Yulin1 LAI Yuanming2.The Identification and Classification of Freezing-Thawing and Frozen Environments for the Surrounding Rocks of Tunnels in Cold Regions[J]. MODERN TUNNELLING TECHNOLOGY, 2016,53(3): 19-25
[14] LU Kang-Cheng, MA Chao-Chao, JI Zhe, XU Peng.  An Impact Analysis of the Freeze-Thawing behind Tunnel Linings in Cold Regions[J]. MODERN TUNNELLING TECHNOLOGY, 2012,49(5): 29-33
[15] 吕Kang-Cheng , Ji-Zhe, Ma-Chao-Chao, Xu-Peng.Temperature and Seepage Variation Law and Frost Damage Prevention for Tunnels in Cold Regions[J]. MODERN TUNNELLING TECHNOLOGY, 2012,49(1): 33-38
Copyright 2010 by MODERN TUNNELLING TECHNOLOGY