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首页> 外文期刊>International journal of geotechnical engineering >A total stress-pore water pressure formulation of coupled consolidation analysis for saturated soils
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A total stress-pore water pressure formulation of coupled consolidation analysis for saturated soils

机译:饱和土耦合固结分析的总应力-孔隙水压力公式

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A one-phase formulation has been extensively used to deal with consolidation for saturated soils in which incompressible elasticity is used for undrained conditions. An undrained Poisson's ratio close to 0.5 and the equivalent bulk modulus for water are required as inputs. Use of the latter one is inconsistent with assumption of water incompressibility in the soil mechanics for saturated soils. In addition, the formulation often leads to indeterminate problems, which is mainly attributed to the fact that there is no strict and fast rule available to determine the exact values of undrained Poisson's ratio and equivalent bulk modulus for water. At present, determination of undrained Poisson's ratio and the equivalent bulk modulus for water for undrained conditions is highly subjective, and quality of the simulation results relies on the modelers' experience. Special numerical integration techniques are also needed to avoid numerical instability and systematic error associated with the use of the two parameters.rnBy considering saturated soil as a special case of unsaturated soil and using the extensively-used two stress state variable concept in unsaturated soil mechanics, this paper presented a total stress-pore water pressure formulation of coupled con-solidation theory for saturated soils. Derivation of governing differential equations and implementation in the finite element method using the thermodynamic analogue were reported, followed by its verification through example analyses of loading under undrained condition and coupled consolidation for a saturated soil. Its potential application in the pavement engineer-ing was explored as well by modeling the pore water pressure increase due to a moving load. In the proposed formulation, any behavior of a saturated soil, including undrained conditions, is expressed by a combination of two drained processes: 1) changes in the total stress under constant pore water pressure, and 2) changes in the pore water pressure under constant total stress. In this way, neither undrained Poisson's ratio nor the equivalent bulk modulus is needed as an input, and the associated numerical instability and systematic error are avoided. No special numerical integration technique is required, and converged solutions can be easily obtained by a few iterations.
机译:一阶段配方已被广泛用于处理饱和土壤的固结,其中不可压缩的弹性用于不排水的条件。需要不排水的泊松比接近0.5和等效的水体积模量作为输入。后一种方法的使用与饱和土的土壤力学中水不可压缩性的假设不一致。另外,该配方经常导致不确定的问题,这主要归因于以下事实:没有严格,快速的规则可用于确定水的不排水泊松比和等效体积模量的确切值。目前,确定不排水条件下水的不排水泊松比和等效体积模量是非常主观的,仿真结果的质量取决于建模者的经验。还需要特殊的数值积分技术来避免与使用这两个参数相关的数值不稳定和系统误差。rn通过将饱和土视为非饱和土的特殊情况,并在非饱和土力学中使用广泛使用的两个应力状态变量概念,本文提出了一种基于固结耦合固结理论的总应力-孔隙水压力公式。报告了控制微分方程的推导方法,以及使用热力学模拟在有限元法中的实现,然后通过不排水条件下的荷载分析和饱和土的固结耦合实例分析进行了验证。通过模拟由于移动荷载引起的孔隙水压力增加,也探索了其在路面工程中的潜在应用。在建议的公式中,饱和土壤的任何行为,包括不排水的条件,都通过两个排水过程的组合来表示:1)在恒定孔隙水压力下总应力的变化,以及2)在恒定孔隙水压力下总孔隙水压力的变化总压力。这样,既不需要不排水的泊松比也不需要等效的体积模量作为输入,并且避免了相关的数值不稳定性和系统误差。无需特殊的数值积分技术,只需几次迭代即可轻松获得收敛的解。

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