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Study on deepwater conductor jet excavation mechanism in cohesive soil

机译:粘性土壤深水导体喷射挖掘机制研究

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摘要

Conductor casing jetting technique has been increasingly applied in deepwater drilling. The insight into the jetting excavation mechanisms is critical in guiding a successful conductor casing jetting operation. The real-time continuous jet excavation process is simulated with the volume of fluid (VOF) multiphase method of CFD (Computational Fluid Dynamics) ANSYS Fluent calculation software in the current study. The cohesive soil is modelled by using a kind of viscous fluid with Herschel-Bulkley model. In addition, a laboratory half round nozzle jet excavation test is designed for verification by comparison of the observed jet excavation profile with the numerical results. The sensitivity parameters affecting the conductor jetting excavation mechanism in cohesive soil are thus investigated. It is found that the application of Herschel-Bulkley (HB) model for cohesive soil and the VOF method of Fluent can provide a good simulation of jet excavation process. The maximum excavation depth can be determined by the undrained ultimate bearing capacity of the circular foundation with a bearing capacity factor of 6.7. The nozzle position, jet velocity and soil strength have significantly influence on the depth and width of the jet excavation profile in conductor oblique jet.
机译:导体套管喷射技术越来越多地应用于深水钻井。进入喷射挖掘机构的洞察对于引导成功的导体套管喷射操作至关重要。利用CFD(计算流体动力学)ANSYS流畅的计算软件的流体(VOF)多相方法的体积模拟实时连续喷射挖掘过程。通过使用带有Herschel-Bulkley模型的粘性液体建模的粘性土壤。此外,实验室半圆形喷嘴喷射挖掘试验设计用于通过与数值结果的观察到的喷射挖掘曲线进行比较来验证。因此研究了影响粘性土壤中导体喷射挖掘机制的敏感性参数。结果发现,Herschel-Bulkley(HB)模型用于粘性土壤和vof方法流利的方法可以良好的射流挖掘过程模拟。最大挖掘深度可以通过圆形基础的未推迟的极限承载力确定,轴承容量因子为6.7。喷嘴位置,喷射速度和土壤强度对导体倾斜射流中的喷射挖掘曲线的深度和宽度显着影响。

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