NUMERICAL SIMULATION OF JET EXCAVATION IN CONDUCTOR JETTING OPERATIONS IN SUBMARINE SOIL: MESH ANALYSIS

D. Galindo, M. S. C. Tenório, A. F. C. Gomes, J. G. O. Marinho, B. Barboza, L. M. T. D. Oliveira, J. P. L. Santos
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Abstract

The more complex exploration techniques and operations in deepwater environment are, the higher become the financial costs involved in the process. The rent of an offshore rig, for instance, can cost hundreds of thousands of dollars per day. Therefore, improving deepwater drilling efficiency can lead to significant cost savings. The drilling process of an oil well starts with the initial drilling, which is the operation to accommodate the conductor casing. Among the techniques to set the conductor casing, jetting operations have become popular in submarine environments where the seafloor sediments allow the technique to be used. In these environments, the submarine soil consists of a deformable body displaying a behavior that falls between a linear elastic solid and viscous fluid. Therefore, its behavior is governed by general theory of rheology, and it can be described as highly viscous non-Newtonian fluid. Despite the lack of comprehensive investigations, promising works can be carried out by considering cohesive soil behavior as viscous fluid. Problems of this type can be solved using computational fluid dynamics (CFD), a powerful software which solves complex fluid mechanics equations. Thus, this work numerically evaluates the excavation mechanism in conductor jetting operations in submarine soil during the first 30 seconds of examination, considering soil as viscous fluid of Herschel-Bulkley. Ansys Fluent®, which is a CDF software based on the finite-volume method, was applied to simulate the jetting excavation process. The results indicate that all meshes generated in the development of this work have an excellent quality, and they also show that the greater the mesh refinement is, the higher the accuracy and robustness of the model will be. However, the computational cost to simulate the model increases exponentially with the increase in number of elements, highlighting the importance of properly balancing mesh refinement and computational effort. When analyzing the results, we could also identify the excavation profile made by the bit jet, which presented an almost symmetrical shape.
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海底土体导体喷射作业中射流开挖的数值模拟:网格分析
深水环境下的勘探技术和作业越复杂,涉及的财务成本就越高。例如,海上钻井平台的租金每天可能要花费数十万美元。因此,提高深水钻井效率可以显著节省成本。油井的钻井过程从初始钻井开始,即安装套管的作业。在设置导体套管的技术中,喷射作业在海底环境中变得流行,因为海底沉积物允许使用该技术。在这些环境中,海底土壤由可变形体组成,表现出介于线弹性固体和粘性流体之间的行为。因此,它的行为受一般流变理论的支配,可以被描述为高粘性的非牛顿流体。尽管缺乏全面的研究,但将粘性土的行为视为粘性流体可以开展有希望的工作。这类问题可以用计算流体力学(CFD)来解决,这是一个功能强大的软件,可以求解复杂的流体力学方程。因此,本研究将海底土体视为黏性Herschel-Bulkley流体,在测试前30秒内对导体喷射作业在海底土体中的开挖机理进行数值评估。采用基于有限体积法的CDF软件Ansys Fluent®对喷流开挖过程进行模拟。结果表明,本工作开发过程中生成的所有网格质量都很好,并且网格细化程度越高,模型的精度和鲁棒性越高。然而,模拟模型的计算成本随着元素数量的增加呈指数增长,突出了适当平衡网格细化和计算量的重要性。在分析结果时,我们还可以识别出钻头射流形成的开挖轮廓,其形状几乎是对称的。
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