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Bayesian inverse analysis for geotechnical site characterisation using cone penetration test

机译:贝叶斯逆分析用于岩土现场特征的圆锥渗透试验

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Extracting information on underground stratigraphy (i.e. the number of soil layers and their thicknesses underground) and soil properties from in-situ and/or laboratory test results [e.g. Cone Penetration Test (CPT) data] is an elementary step in geotechnical analysis and design. This task can be treated as an inverse analysis problem. This paper develops a Bayesian inverse analysis approach for the interpretation of CPT data, which makes use of CPT data as input of the inverse analysis and identifies the underground stratigraphy and the soil type in each soil layer. It is integrated with the Robertson chart to explicitly and properly consider the uncertainty in the CPT-based soil classification and the spatial distribution of the CPT data. The proposed approach is illustrated and verified using real-life and simulated CPT data. It is shown that the proposed approach properly identifies the underground soil stratification and classifies the soil type of each layer.
机译:从现场和/或实验室测试结果中提取地下地层信息(即地下土壤层数及其厚度)和土壤特性信息圆锥穿透测试(CPT)数据]是岩土分析和设计中的基本步骤。此任务可以视为反分析问题。本文开发了一种用于解释CPT数据的贝叶斯反分析方法,该方法利用CPT数据作为反分析的输入,并识别地下地层和每个土壤层中的土壤类型。它与Robertson图集成在一起,以明确和适当地考虑基于CPT的土壤分类中的不确定性和CPT数据的空间分布。使用实际和模拟的CPT数据对所提出的方法进行了说明和验证。结果表明,所提出的方法能够正确识别地下土壤分层,并对每一层的土壤类型进行分类。

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