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首页> 外文期刊>Tunnelling and underground space technology >Numerical simulation for an estimation of the jacking force of ultra-long-distance pipe jacking with frictional property testing at the rock mass-pipe interface
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Numerical simulation for an estimation of the jacking force of ultra-long-distance pipe jacking with frictional property testing at the rock mass-pipe interface

机译:岩石大管界面摩擦物业试验超长距离管升降估计数值模拟

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In ultra-long-distance rock micro-shield pipe jacking, the pipe wall friction resistance is a key factor that determines the magnitude of the jacking force and the layout of the intermediate jacking stations (IJSs), whereas the pipe-rock contact condition is the critical factor controlling the pipe string wall friction resistance. This paper aims to reveal the variation law of the friction resistance between the outer wall of a large-section of concrete pipe string and the surrounding rock during construction via ultra-long-distance rock micro-shield pipe jacking. To that end, the shear friction behaviour and mechanical mechanism was investigated between sandstone and concrete pipe string walls under seven different complex contact conditions (primarily considering various combinations of the three substances, namely, extra-pipe in situ debris, bentonite slurry and sand-laden waste mud at the pipe-rock contact surface) through direct rock shear tests based on the actual pipe-rock contact condition at the Guanjingkou Water Conservancy Project in Chongqing. The average friction coefficient (AFC) of the residual phase of the contact surface under 7 contact conditions was obtained by friction testing. Combined with the contact situation between the surrounding rock and pipe strings at the stage of a rapidly increasing jacking force, a three-dimensional finite element model was established, and the displacement control method was used to simulate the jacking. The comparison with the field monitoring results shows that the numerical model can accurately predict the jacking force and verify the reliability of the AFC parameters in the numerical calculation. Therefore, the combination of indoor testing and the finite element method can be applied to study the jacking force for other ultra-long rock micro-shield pipe jacking applications.
机译:在超长距离岩石微屏蔽管顶,管壁摩擦阻力是确定顶层力的幅度和中间顶板站(IJSS)的幅度的关键因素,而管岩接触状态是控制管柱壁摩擦阻力的关键因素。本文旨在揭示通过超长距离岩石微屏蔽管道施工过程中大部分混凝土管柱和周围岩石之间的摩擦阻力的变化规律。为此,在七种不同复杂的接触条件下调查了剪切摩擦行为和机械机制(在七种不同的复杂接触条件下(主要考虑三种物质的各种组合,即原位碎片,膨润土浆料和沙子)揽人泥接触表面上的废泥)通过直接岩石剪切试验,基于重庆市冠泾口水利项目的实际管岩接触状态。通过摩擦试验获得了7个接触条件下的接触表面残余相的平均摩擦系数(AFC)。结合在快速增加的顶升力的阶段之间周围岩石和管道之间的接触情况,建立了三维有限元模型,并使用了位移控制方法来模拟顶部。与现场监测结果的比较表明,数值模型可以准确地预测起动力并验证在数值计算中的AFC参数的可靠性。因此,室内测试和有限元方法的组合可以应用于研究其他超长岩微屏蔽管超顶型应用的起动力。

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