土钉墙弹性地基梁面层," /> 土钉墙弹性地基梁面层,"/> Analysis of facing earth pressure in soil-nailing walls

›› 2010, Vol. 31 ›› Issue (5): 1615-1620.

• Numerical Analysis • Previous Articles     Next Articles

Analysis of facing earth pressure in soil-nailing walls

WANG Li-feng   

  1. Department of Civil Engineering, Zhejiang University of Science and Technology, Hangzhou 310012, China
  • Received:2008-10-17 Online:2010-05-10 Published:2010-05-24

Abstract:

Present designers of soil-nailing walls consider the facing as accessory structure rather than the main one, and all active earth pressures of soil-nailing walls are born by nails. However It is absolutely sure that the facing bear against water and earth pressure. Facing isolated and considered as finite beam on elastic foundation simply, solutions of displacement, angles of rotation, bending moment and shear force of soil-nailing walls are gained on basis of field tests in layered soil. Rationality of the model is tested and verified. The results that can disclose laws of distribution of facing earth pressure are in agreement with the actual measurement data. Earth pressure in bounding surface shows abrupt changes while displacement of facing exhibits continuous characteristics. Earth pressure of facing applied by soft soil presents bigger values than that of hard soil. Earth pressure in “upper soft and lower hard layers” can be easily gained than that of “lower soft and upper hard layers” soils. The laws of facing earth pressure in various soil layers are studied that the curves of earth pressure in good layers such as sand soil and hard plastic clay have characteristics of zigzag shape rather than smooth one in bad soil layers of silt soil and soft plastic clay. At the meantime, ratios of earth pressure to nail tension are calculated; and effects of facing on earth pressure become clearer and clear with depth of pit excavation. The ratios of earth pressure to nail tension become larger with excavation depth. In order to meet the necessity of mechanics of soil-nailing walls, rations of facing earth pressure to nail tension in various soil layers and depths should be put forward for references. The results and the method of calculating above ratios based on precise elasticity theory are very significant and have engineering use value for further research of mechanics of soil-nailing walls and for designers considering the facing action against earth pressure.

Key words: soil-nailing wall, beams on elastic foundation, facing

CLC Number: 

  • TU 471.8
[1] XU Peng , JIANG Guan-lu , WANG Xun, HUANG Hao-wei , HUANG Zhe, WANG Zhi-meng, . Centrifuge model tests on influence of facing on reinforced soil retaining walls [J]. Rock and Soil Mechanics, 2019, 40(4): 1427-1432.
[2] CHEN Jian-feng, TIAN Dan, LIU Jun-xiu,. Internal failure mechanism of reinforced soil walls with rigid/flexible facings [J]. , 2018, 39(7): 2353-2360.
[3] YANG Ming-hui, FENG Chao-bo, ZHAO Ming-hua, LUO Hong. A method for calculating laterally loaded pile using strain wedge model considering slope effect [J]. , 2018, 39(4): 1271-1280.
[4] XU Peng, JIANG Guan-lu, HU Yao-fang , REN Shi-jie, WANG Zhi-meng, . Calculation of fundamental frequencies of reinforced retaining walls with full-height rigid facing [J]. Rock and Soil Mechanics, 2018, 39(12): 4475-4481.
[5] PENG Fang-le , CAO Yan-bo. Numerical analysis of effect of facing rigidity on reinforced-sand retaining walls [J]. , 2012, 33(3): 864-871.
[6] YE Guan-bao , ZHANG Zhen , XING Hao-feng , XU Chao. Influence of facing on mechanical behavior of reinforced retaining wall for embankment [J]. , 2012, 33(3): 881-886.
[7] ZHU Jian-feng, CHEN Chang-fu, XU Ri-qing. Application of ATMGA to interior stability analysis of soil-nailing wall [J]. , 2010, 31(5): 1663-1669.
[8] YE Jun-neng , WANG Li-feng. Finite element analysis of behaviors of soil-nailing wall [J]. , 2009, 30(S2): 528-531.
[9] YANG Yu-wen. Applicability of computational methods for soil-nailing walls [J]. , 2009, 30(11): 3357-3364.
[10] LI Fang-zheng. Research on superposition method of interaction between soil frost heave and beams on foundation [J]. , 2009, 30(1): 79-85.
[11] WANG Li-feng , ZHU Xinag-rong , . Analysis of displacement and inner force in soil-nailing walls [J]. , 2008, 29(2): 437-441土钉墙面层位移和内力的计算分析.
[12] JIE Yu-xin , WANG Nai-dong , LI Guang-xin , . Modified equivalent additional stress method for numerical analysis of reinforced soil [J]. , 2007, 28(S1): 129-132.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
[1] LIU Xiao-wen,CHANG Li-jun,HU Xiao-rong. Experimental research of matric suction with water content and dry density of unsaturated laterite[J]. , 2009, 30(11): 3302 -3306 .
[2] HUANG Jian-hua,SONG Er-xiang. Research on mechanical properties of frozen curtain in large anchorage foundation pit engineering[J]. , 2009, 30(11): 3372 -3378 .
[3] WANG Guan-shi, LI Chang-hong, CHEN Bao-jun, LI Sh-ihai. Propagation law of stress wave in nonlinear structural surface medium[J]. , 2009, 30(12): 3747 -3752 .
[4] WANG Zhao-yang, XU Qiang, NI Wan-kui. Study of undisturbed loess stress-strain relation during CT test[J]. , 2010, 31(2): 387 -391 .
[5] DENG Qin,GUO Ming-wei,LI Chun-guang,GE Xiu-run. Vector sum method for slope stability analysis based on boundary element method[J]. , 2010, 31(6): 1971 -1976 .
[6] WAN Shao-shi, NIAN Ting-kai, JIANG Jing-cai, LUAN Mao-tian. Discussion on several issues in slope stability analysis based on shear strength reduction finite element methods (SSR-FEM)[J]. , 2010, 31(7): 2283 -2288 .
[7] YAN Tie, LI Wei, BI Xue-liang. Research on effective stress model in porous media based on fractal method[J]. , 2010, 31(8): 2625 -2629 .
[8] XU Wei-sheng, CHAI Jun-rui, CHEN Xing-zhou, SUN Xu-shu. Study of nonlinear noncubic seepage in netwok rock and its application[J]. , 2009, 30(S1): 53 -57 .
[9] ZHAO Shang-yi, ZHENG Ying-ren, LI An-hong, QIU Wen-ping, TANG Xiao-song. Application of multi-row embedded anti-slide piles to landslide of Wulong county government[J]. , 2009, 30(S1): 160 -164 .
[10] LIU Zhen-ping, HE Huai-jian, ZHU Fa-hua. Study of technology of fast 3D modeling and visualization based on borehole data[J]. , 2009, 30(S1): 260 -266 .