期刊文献+

Rock slope stability evaluation in static and seismic conditions for left bank of Jinsha River Bridge along Lijiang-Xamgyi'nyilha railway, China 被引量:3

Rock slope stability evaluation in static and seismic conditions for left bank of Jinsha River Bridge along Lijiang-Xamgyi’nyilha railway, China
在线阅读 下载PDF
导出
摘要 Jinsha River Bridge is located along the Lijiang-Xamgyi'nyilha railway on the southeastern Tibet plateau; it is an area with a high prevalence of earthquakes. The bridge abutments were designed to be constructed in river bank slopes, where rocks are controlled by two sets of joint planes that significantly influence the stability of the left bank slope. According to the engineering-geological conditions and the characteristics of discontinuities, strength properties of the rock mass were obtained based on Barton model and direct shear test. Numerical analyses were performed using FLAC3D software to examine the slope's response to seismic loading. Then in order to evaluate the damage trends of the rock mass under the different loading conditions, a calculation model based on the geological parameters and slope stability was simulated and analyzed using the discrete element numerical simulation program UDEC (Universal Dis- tinct Element Code), and the effect of degradation of discontinuities on the slope stability was investigated. The results show that the destruction of rock mass under the gravity, bridge foundation, and seismic load are mainly concentrated within 30 m depth of slope, and the slope under loading may slide along joint planes. In addition, the dynamic analysis by amplification of the input loading indicates that instability occurs to the bank slope at a height of about 200 m, and rock blocks will fail under seismic load. Therefore, to prevent the slope from deformation under the engineering loading and strong earthquakes, the bridge foundation should be strengthened. Jinsha River Bridge is located along the Lijiang-Xamgyi'nyilha railway on the southeastern Tibet plateau; it is an area with a high prevalence of earthquakes. The bridge abutments were designed to be constructed in river bank slopes, where rocks are controlled by two sets of joint planes that significantly influence the stability of the left bank slope. According to the engineering-geological conditions and the characteristics of discontinuities, strength properties of the rock mass were obtained based on Barton model and direct shear test. Numerical analyses were performed using FLAC3D software to examine the slope's response to seismic loading. Then in order to evaluate the damage trends of the rock mass under the different loading conditions, a calculation model based on the geological parameters and slope stability was simulated and analyzed using the discrete element numerical simulation program UDEC (Universal Dis- tinct Element Code), and the effect of degradation of discontinuities on the slope stability was investigated. The results show that the destruction of rock mass under the gravity, bridge foundation, and seismic load are mainly concentrated within 30 m depth of slope, and the slope under loading may slide along joint planes. In addition, the dynamic analysis by amplification of the input loading indicates that instability occurs to the bank slope at a height of about 200 m, and rock blocks will fail under seismic load. Therefore, to prevent the slope from deformation under the engineering loading and strong earthquakes, the bridge foundation should be strengthened.
出处 《Journal of Modern Transportation》 2012年第3期121-128,共8页 现代交通学报(英文版)
基金 China Railway EryuanEngineering Group CO.LTD (2009-LiXiang Railway-13) the Fundamental Research for the Central Uni-versities (SWJTU09BR033)
关键词 strength properties joints planes slope stability discrete element method dynamic analysis strength properties joints planes slope stability discrete element method dynamic analysis
  • 相关文献

参考文献1

二级参考文献7

  • 1刘耀儒 刘元高 周维恒 等.应用FLAC方法进行动力分析.岩石力学与工程学报,2001,20(2):1518-1522.
  • 2Ishizaki Hatekeyama.Consideration on the dynamical behavior of earth dams[R].Bul.No.52,Disaster Prevention Research Inst.,Kyoto Unvi.,1963
  • 3Clough R W,Chopra A K.Earthquake stress analysis in earth dams[J].J.Engng.Mech.,ASCE,1966,92(EM2):51-60
  • 4Kunar R R,Beresford P J,Cundall P A.A tested soil-structure model for surface interaction[R].India:Rookee Univ.,1977
  • 5Kuhlemeyer R L,Lysmer J.Finite element method accuracy for wave propagation problems[J].J.Soil Mech.& Foundations Div.,ASCE,1973,99(SM5):421-427
  • 6祁生文.[D].北京:中国科学院地质与地球物理研究所,2002.
  • 7Itasca Consulting Group Inc.FLAC-3D(Fast Lagrangian Analysis of Continua in 3 Dimensions),Version 2.00,Users Manual(VolumeⅤ)[R].USA:Itasca Consulting Group Inc,1997

共引文献199

同被引文献11

引证文献3

二级引证文献17

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部