...
首页> 外文期刊>Exploration Geophysics >Application of linear-array microtremor surveys for rock mass classification in urban tunnel design
【24h】

Application of linear-array microtremor surveys for rock mass classification in urban tunnel design

机译:线性阵列微震测量在岩体分类中的应用

获取原文
获取原文并翻译 | 示例

摘要

Urban conditions, such as existing underground facilities and ambient noise due to cultural activity, restrict the general application of conventional geophysical techniques. At a tunnelling site in an urban area along an existing railroad, we used the refraction microtremor (REMI) technique (Louie, 2001) as an alternative way to get geotechnical information. The REMI method uses ambient noise recorded by standard refraction equipment and a linear geophone array to derive a shear-wave velocity profile. In the inversion procedure, the Rayleigh wave dispersion curve is picked from a wavefield transformation, and iteratively modelled to get the S-wave velocity structure. The REMI survey was carried out along the line of the planned railway tunnel. At this site vibrations from trains and cars provided strong seismic sources that allowed REMI to be very effective. The objective of the survey was to evaluate the rock mass rating (RMR), using shear-wave velocity information from REMI. First, the relation between uniaxial compressive strength, which is a component of the RMR, and shear-wave velocity from laboratory tests was studied to learn whether shear-wave velocity and RMR are closely related. Then Suspension PS (SPS) logging was performed in selected boreholes along the profile, in order to draw out the quantitative relation between the shear-wave velocity from SPS logging and the RMR determined from inspection of core from the same boreholes. In these tests, shear-wave velocity showed fairly good correlation with RMR. A good relation between shear-wave velocity from REMI and RMR could be obtained, so it is possible to estimate the RMR of the entire profile for use in design of the underground tunnel.
机译:城市条件,例如现有的地下设施和文化活动引起的环境噪声,限制了常规地球物理技术的普遍应用。在现有铁路沿线城市地区的隧道工地,我们使用折射微震(REMI)技术(Louie,2001)作为获取岩土工程信息的替代方法。 REMI方法使用标准折射设备记录的环境噪声和线性地震检波器阵列来得出剪切波速度曲线。在反演过程中,从波场变换中选取瑞利波频散曲线,并对其进行迭代建模以获得S波速度结构。 REMI调查沿计划的铁路隧道沿线进行。在该站点,火车和汽车的振动提供了强大的地震源,使REMI非常有效。这项调查的目的是使用REMI的横波速度信息来评估岩体质量等级(RMR)。首先,研究了作为RMR组成部分的单轴抗压强度与实验室测试中的剪切波速度之间的关系,以了解剪切波速度与RMR是否密切相关。然后沿剖面在选定的钻孔中进行悬浮PS(SPS)测井,以得出SPS测井的剪切波速度与从相同钻孔的岩心检查确定的RMR之间的定量关系。在这些测试中,剪切波速度显示出与RMR相当好的相关性。可以得到来自REMI和RMR的剪切波速度之间的良好关系,因此可以估计整个剖面的RMR,以用于地下隧道的设计。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号