›› 2013, Vol. 34 ›› Issue (7): 2023-2030.

• Geotechnical Engineering • Previous Articles     Next Articles

Analysis of effect of canyon terrain on stress and displacement of cutoff wall in dam foundation with deep overburden

PAN Ying1, 2,HE Yun-long1,ZHOU Xiao-xi3,CAO Xue-xing1   

  1. 1. State Key Laboratory of Water Resources and Hydropower Engineering Science, Wuhan University, Wuhan 430072, China; 2. Central and Southern China Municipal Engineering Design & Research Institute Co., Ltd., Wuhan 430010, China; 3. HydroChina Corporation, Beijing 100120, China
  • Received:2012-06-13 Online:2013-07-10 Published:2013-07-15

Abstract: In order to research the effect of the canyon terrain on the stress and displacement of cutoff wall in dam foundation with deep overburden, taking an asphalt concrete core rockfill dam project as a background, a narrow canyon and a broad canyon were simulated and corresponding finite element models were also established respectively. The filling materials of dam and overburden were simulated by the Duncan-Chang E-B model. The interface without thickness was used to simulate the contact relation between the cutoff wall, overburden and bedrock. A 3-D nonlinear finite element calculation was carried out to analyze the stress and displacement of cutoff wall in different canyon terrains. Results indicate that vertical deformation and horizontal displacement of cutoff wall, as well as unequal settlement between cutoff wall and overburden in narrow canyon are less than that in a broad one; the maximum unequal settlement reduced 24.8%. The cutoff wall is less restrained by the broad canyon than that in a narrow one; thus the vertical stress in the broad canyon is greater and increases by 40.3% utmost. The position of the maximum vertical stress of cutoff wall is affected both by the position of neutral point and canyon terrain. The maximum vertical stress is approximately 30% by the weight of embankment and 70% by negative skin friction. The studied results can provide a reference for the design of cutoff wall in dam foundation in different canyon terrains.

Key words: canyon terrain, deep overburden, cutoff wall, stress and displacement, interface without thickness

CLC Number: 

  • TV 641
[1] XU Hao-qing, ZHOU Ai-zhao, JIANG Peng-ming, LIU Shun-qing, SONG Miao-miao, CHEN Liang, . Study on bentonite content of different sand-bentonite vertical cutoff wall backfill materials [J]. Rock and Soil Mechanics, 2019, 40(S1): 424-430.
[2] TONG Xing, LI Yu-chao, KE Han, WEN Yi-duo, PAN Qian, . Field test on the stress state and consolidation behavior of soil-bentonite cutoff walls [J]. , 2018, 39(6): 2131-2138.
[3] LI Bo, XIAO Xian-bo, XU Tang-jin, ZHOU Song,. Experiment on connecting form between cutoff wall and composite geomembrane of cofferdam with existing wall mud [J]. , 2018, 39(5): 1761-1766.
[4] ZHANG Wen-jie, LOU Xiao-hong, GAO Jia-wen. A dialysis test for fast measurement of diffusion coefficient of high slump backfill [J]. , 2018, 39(2): 523-528.
[5] ZHU Wei , XU Hao-qing , WANG Sheng-wei , FAN Xi-hui,. Influence of CaCl2 solution on the permeability of different clay-based cutoff walls [J]. , 2016, 37(5): 1224-1230.
[6] LIU Guang-ming、 YUAN Hong-hu、 HUANG Wei-hong、 LIU Miao、 WANG Zhi-yin、. Numerical simulation for cutoff wall under backfilling construction of Daning reservoir [J]. , 2013, 34(6): 1786-1790.
[7] YU Li-yuan , CHEN Xiao-peng , HAN Li-jun , WANG Ying-chao . Elastic analysis of surrounding rock for underwater tunnels based on functions of complex variables method [J]. , 2012, 33(S2): 345-351.
[8] LIU Bo1,LI Hai-bo ,FENG Hai-peng ,ZHOU Qing-chun1,WANG Miao1,SONG Quan-jie1. Effect of dynamic compaction vibration on cutoff wall and its safety monitoring [J]. , 2012, 33(10): 3073-3080.
[9] DU Yan-jun, FAN Ri-dong. Compressibility and permeability behavior of two types of amended soil-bentonite vertical cutoff wall backfills [J]. , 2011, 32(S1): 49-54.
[10] SHI Xiu-song,CHENG Zhan-lin,ZUO Yong-zhen,HU Sheng-gang. Density identification method of dam foundation deep overburden [J]. , 2011, 32(7): 2073-2078.
[11] XU Chao, HUANG Liang, XING Hao-feng. Influence of cement-bentonite slurry mixing ratio on permeability of cutoff wall [J]. , 2010, 31(2): 422-426.
[12] LI Xin-ping, DAI Yi-fei, LIU Jin-huan, ZENG Ming , LIU Li-sheng, ZHANGKai-g. Test study and numerical simulation analysis of explosion in steel tubes [J]. , 2009, 30(S1): 5-9.
[13] BAI Yong , CHAI Jun-rui , CAO Jing-ying , ZHANG Sheng-li . Numerical analysis of seepage filed in deep overburden foundation [J]. , 2008, 29(S1): 90-94.
[14] LUO Gu-huai , LUO Yu-long , PENG Hua . Study of vertical cutoff wall model for levees in Dongting Lake region [J]. , 2008, 29(8): 2287-2291.
[15] LUO Yu-long , PENG Hua , LUO Gu-huai . Experimental study of high-frequency vibratory hammer sheet wall technology of dealing with sand-gravel levee foundation [J]. , 2007, 28(S1): 877-881.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
[1] LI Ying-yong,ZHANG Ding-li,ZHANG Hong-bo,SONG Xiu-guang. Research on failure mechanism and effects of prestressed anchor cables for reinforcing slopes[J]. , 2010, 31(1): 144 -150 .
[2] LIANG Jian-wei, FANG Ying-guang, GU Ren-guo. Analysis of microelectric field effect of seepage in tiny-particle clay[J]. , 2010, 31(10): 3043 -3050 .
[3] WANG Li-yan,JIANG Peng-ming,LIU Han-long. Mechanism analysis of residual liquefied deformation of breakwater during earthquake[J]. , 2010, 31(11): 3556 -3562 .
[4] LI Xiu-zhen,WANG Cheng-hua,DENG Hong-yan. A comparison of distance and Fisher discrimination methods applied to identifying potential landslides[J]. , 2011, 32(1): 186 -192 .
[5] GU Shuan-cheng, SU Pei-li, WANG Jian-wen, WANG Hong-ke. Study of peculiarity of burnt rock mass and its grouting spreading behavior[J]. , 2009, 30(S2): 60 -63 .
[6] JI Wu-jun. Investigation and analysis of engineering problems for loess tunnels[J]. , 2009, 30(S2): 387 -390 .
[7] CHEN Li-hua , LIN Zhi , LI Xing-ping. Study of efficacy of systematic anchor bolts in highway tunnels[J]. , 2011, 32(6): 1843 -1848 .
[8] CHEN Li-wen, SUN De-an. Bifurcation analysis of overconsolidated clays with soil-water coupling along different stress paths[J]. , 2011, 32(10): 2922 -2928 .
[9] ZHENG Gang ZHANG Li-ming DIAO Yu. Analysis of working performance of piles beneath excavation bottom and settlement calculation[J]. , 2011, 32(10): 3089 -3096 .
[10] ZHAO Ming-hua, LEI Yong, ZHANG Rui. Study of punching failure mode and safe thickness of pile foundation in karst region[J]. , 2012, 33(2): 524 -530 .