首页> 外文期刊>Tunnelling and underground space technology >Face stability conditions in granular soils during the advancing and stopping of earth-pressure-balanced-shield machine
【24h】

Face stability conditions in granular soils during the advancing and stopping of earth-pressure-balanced-shield machine

机译:地球压力平衡屏蔽机的推进和停止过程中颗粒土的面部稳定性条件

获取原文
获取原文并翻译 | 示例
       

摘要

The instability of the tunnel face is one of the biggest concerns when tunneling with an earth pressure balanced shield (EPBS) machine. The mechanism by which the tunnel face fails is highly related to the advance status of the EPBS machine, which has rarely been studied. This paper aims to address this problem by examining the face stability in two situations, i.e., 1) EPBS machine advancement and 2) EPBS machine stoppage. Specifically, we present results of tests carried out using a laboratory reduced-scale model that realizes the EPBS tunneling operations in fine dry sand. A three-dimensional (3D) discrete-element method (DEM) model, which is able to simulate the main EPBS machine excavation process, is employed to gain further insight into the mechanisms of the face failure by comparing with the laboratory results of the face failure mechanism, limit face pressure and the trajectory of the soil at the face. The results show that the mechanism by which the face failure differs significantly for the studied two situations. A partial face failure mode and a larger limit face pressure were observed when the EPBS machine continued to advance. In contrast, a global face failure mode and a smaller limit face pressure were observed when the EPBS machine stopped. When the EPBS machine continued to advance, the trajectory of the soil particles at the face was spiral, with soil mainly flowing into the chamber through the upper part of the cutter head. When the EPBS machine stopped, the trajectory of the soil particles at the face was straight, and inflows of soil to the chamber occurred through the nearest cutter head opening.
机译:隧道面的不稳定性是与地球压力平衡屏蔽(EPB)机器隧穿时的最大问题之一。隧道面失效的机制与EPBS机器的预先状态有高度相关,这很少已经研究过。本文旨在通过检查两种情况下的面部稳定性,即11)EPB机器进步和2)EPBS机器停止来解决这一问题。具体而言,我们使用实验室减少规模模型的测试结果,该模型实现了精细沙子中的EPBS隧道操作。一种立体(3D)离散元素方法(DEM)模型,其能够模拟主EPB机械挖掘过程,通过与面部的实验室结果进行比较,进一步了解面部故障的机制故障机制,限制面部压力和面部土壤的轨迹。结果表明,对于研究的两种情况,面部故障显着不同的机制。当EPB机器继续前进时,观察到部分面部故障模式和更大的极限面压。相反,当EPB机器停止时,观察到全局面部故障模式和更小的极限面压。当EPB机器继续前进时,脸部的土壤颗粒的轨迹是螺旋的,土壤主要流入腔室的刀头的上部。当EPB机器停止时,面部的土壤颗粒的轨迹是直的,并且通过最近的刀头开口发生在腔室中的土壤流入。

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