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Model-based classification of CPT data and automated lithostratigraphic mapping for high-resolution characterization of a heterogeneous sedimentary aquifer

机译:基于模型的CPT数据分类和自动岩相地层制图用于高分辨率表征非均质沉积含水层

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摘要

Cone penetration testing (CPT) is one of the most efficient and versatile methods currently available for geotechnical, lithostratigraphic and hydrogeological site characterization. Currently available methods for soil behaviour type classification (SBT) of CPT data however have severe limitations, often restricting their application to a local scale. For parameterization of regional groundwater flow or geotechnical models, and delineation of regional hydro- or lithostratigraphy, regional SBT classification would be very useful. This paper investigates the use of model-based clustering for SBT classification, and the influence of different clustering approaches on the properties and spatial distribution of the obtained soil classes. We additionally propose a methodology for automated lithostratigraphic mapping of regionally occurring sedimentary units using SBT classification. The methodology is applied to a large CPT dataset, covering a groundwater basin of ~60 km2 with predominantly unconsolidated sandy sediments in northern Belgium. Results show that the model-based approach is superior in detecting the true lithological classes when compared to more frequently applied unsupervised classification approaches or literature classification diagrams. We demonstrate that automated mapping of lithostratigraphic units using advanced SBT classification techniques can provide a large gain in efficiency, compared to more time-consuming manual approaches and yields at least equally accurate results.
机译:锥孔渗透测试(CPT)是目前可用于岩土,岩体地层学和水文地质现场表征的最有效,用途最广泛的方法之一。然而,目前可用的CPT数据的土壤行为类型分类(SBT)方法存在严重局限性,通常将其应用限制在局部范围内。对于区域地下水流量或岩土模型的参数化以及区域水文或岩相地层学的描述,区域SBT分类将非常有用。本文研究了基于模型的聚类在SBT分类中的应用,以及不同聚类方法对获得的土壤类别的属性和空间分布的影响。我们还提出了一种使用SBT分类对区域沉积单元进行自动岩相地层制图的方法。将该方法应用于大型CPT数据集​​,该数据集覆盖了比利时北部约60 km 2 的地下水盆地,其中主要是未固结的沙质沉积物。结果表明,与更频繁使用的无监督分类方法或文献分类图相比,基于模型的方法在检测真实岩性分类方面具有优势。我们证明,与更耗时的手动方法相比,使用先进的SBT分类技术对岩相地层单位进行自动制图可以大大提高效率,并且至少可以获得同样准确的结果。

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