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1-D finite strain consolidation analysis based on isotach plasticity: Class A and Class C predictions of the Ballina embankment

机译:基于等张线可塑性的一维有限应变固结分析:巴利纳路堤的A级和C级预测

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Trial embankments with prefabricated vertical drains (PVDs) or Jute drains were constructed on the National Soft Soil Field Testing Facility (NFTF) at Ballina, NSW, Australia. The results of extensive laboratory and in situ testing and sophisticated field instrumentation of the soils at the site offer an excellent opportunity to investigate the mechanical behaviour of natural estuarine soft clays. An advanced hierarchical constitutive model based on isotach plasticity, viz., the Hunter Clay (HC) model, was used to characterise key features of this soft clay, including the effects of inter-particle cementation, fabric anisotropy and strain rate dependency of the soil behaviour. Incorporation of the HC model into finite strain consolidation theory leads to a fully coupled hydro-mechanical analysis of natural soft clays. The finite difference method, incorporating an explicit solution scheme, was used to solve numerically the highly non-linear partial differential equation governing this initial value problem. A Class A prediction of the settlement of a PVD-treated embankment was carried out. Comparison of this Class A prediction with field measurements of settlement and excess pore water pressure indicated the need for more accurate characterisation of the effects of PVD installation, particularly in terms of the value of the equivalent permeability that was adopted in a simple one-dimensional consolidation analysis of the embankment problem. A Class C numerical prediction was subsequently conducted, showing the capacity to capture accurately the evolution of settlements with time as well as the dissipation of excess pore pressures at various depths in the clay profile. It was found that the Hunter Clay model was able to successfully characterise the mechanical behaviour of the natural soft clay at Ballina, demonstrating its potential for implementation in numerical methods to solve boundary and initial value problems in geotechnical engineering. (C) 2017 Elsevier Ltd. All rights reserved.
机译:在澳大利亚新南威尔士州巴利纳的国家软土田间试验设施(NFTF)上建造了带有预制垂直排水管(PVD)或黄麻排水管的试验路堤。现场广泛的实验室和现场测试结果以及对现场土壤进行复杂现场测试的结果为研究天然河口软粘土的力学性能提供了极好的机会。基于等速线可塑性的高级层次本构模型,即Hunter Clay(HC)模型,用于表征这种软土的关键特征,包括颗粒间胶结,织物各向异性和土壤应变率依赖性的影响行为。将HC模型纳入有限应变固结理论可以对天然软粘土进行完全耦合的水力力学分析。有限差分法,结合了显式求解方案,被用于数值求解控制该初始值问题的高度非线性偏微分方程。对PVD处理的路堤的沉降进行了A级预测。将该A类预测与沉降和过量孔隙水压力的现场测量结果进行比较表明,需要更准确地表征PVD安装的影响,尤其是在简单一维固结中采用的等效渗透率值方面路堤问题分析。随后进行了C级数值预测,显示了准确捕捉沉降随时间变化的能力以及在粘土剖面不同深度消散多余孔隙压力的能力。结果发现,Hunter粘土模型能够成功地描述巴利纳天然软粘土的力学行为,证明了其在数值方法中解决岩土工程边界和初值问题的潜力。 (C)2017 Elsevier Ltd.保留所有权利。

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