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Development of an Optimum Forepole Spacing (OFS) determination method for tunnelling in silty clay with a case study

机译:一种粉砂粘土中最佳掘进间距确定方法的建立与案例研究

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Phase III of Harbin Metro Line #1 was constructed in low to medium plasticity silty clay. In the primary design, forepoles with a spacing of 0.8 m were used as pre-support. However, it was found in the practice that the drilling rate was low and the grouting diffusion range was limited when the water content was low in the silty clay. In order to determine the optimum forepole spacing in relation to water content of the silty clay subject to tunnelling, a method combining laboratory tests, numerical simulations with field monitoring was developed in this study. A series of laboratory tests were performed to relate the deformation and strength parameters of the silty clay with water content. The silty clay has been sub-classified according to liquid index the mechanical parameters at different sub-classes were suggested. The parameters were used in numerical simulations for the determination of the optimum forepole spacing for tunnels in soil mass with different water contents. Field monitoring was performed to calibrate the water content-dependent deformation and strength parameters used in the numerical simulations. Numerical simulations were performed to obtain the ground surface settlement, crown settlement and steel rib axial stress for the cases without pre-support, and with forepores in different spacing. Finally, a scheme for the determining the optimum forepole spacing in relation to water content of the silty clay was obtained. In the scheme, for the silty clay with liquid limits in the range of 0.05-0.20, the tunnel could maintain stability without forepoles for the silty clay with liquid limits in the ranges of 0.20-0.45, and 0.45-0.8, the tunnel could maintain stable with forepoles in spacing of 0.8 m and 1.6 m, respectively. This scheme was used in both the phase III of Harbin Metro Line #1 and Harbin Metro Line #3. The practices proved that the scheme was applicable to the pre-support for safe and economic tunnelling in the low to medium plasticity silty clay for Harbin Metro construction.
机译:哈尔滨地铁一号线三期工程采用中低塑性粉质粘土建造。在主要设计中,将间距为0.8 m的前杆用作预支撑。然而,在实践中发现,当粉质粘土中的水含量低时,钻孔速率低并且灌浆扩散范围受到限制。为了确定相对于隧道开挖的粉质黏土含水量的最佳前极间距,本研究开发了一种结合实验室测试,数值模拟和现场监测的方法。进行了一系列实验室测试,将粉质粘土的变形和强度参数与含水量相关联。根据液体指数对粉质粘土进行了分类,并提出了不同分类下的力学参数。在数值模拟中使用这些参数来确定不同含水量的土壤中隧道的最佳前极间距。进行了现场监测,以校准数值模拟中使用的与水含量有关的变形和强度参数。对于没有预支撑且有不同间距的孔的情况,进行了数值模拟以获得地面沉降,胎冠沉降和钢肋轴向应力。最后,获得了一种用于确定粉质粘土中水含量的最佳前极间距的方案。在该方案中,对于液位在0.05-0.20范围内的粉质黏土,隧道可以保持稳定性,而对于液位在0.20-0.45和0.45-0.8范围内的粉质黏土,其前驱体可以保持稳定。稳定,前臂的间距分别为0.8 m和1.6 m。哈尔滨地铁1号线和哈尔滨地铁3号线的三期工程均采用了该方案。实践证明,该方案适用于哈尔滨地铁建设中低塑性粉质黏土安全经济隧道的预支护。

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