冰-流-土相互作用下非开挖管线响应的模拟

Kenton Pike, Andrew Blundon
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引用次数: 1

摘要

随着大浅滩、纽芬兰和拉布拉多海上油气田的成熟,边际油田需要海底回接来维持生产水平。现有的非沟槽流线长度受到冰山接触等同于流线失效的假设的限制。但是,为了开发滞留资源,需要延长回接时间。为了潜在地减少失效案例的数量,我们可以考虑一个更好的失效定义,以解释由于冰山-土壤-管道相互作用事件引起的管道响应。仅减少自由浮动冰山接触的故障率就可以显著增加安全回接长度。本文采用大变形有限元分析方法研究了自由浮冰冲击下的流线响应。首先模拟了纯竖向荷载下管道-土体的平面应变相互作用响应,并与解析承载力理论进行了比较。研究了非结合性土本构模型在预测致密砂土管道排水贯入阻力方面的影响。研究了斜向垂直-水平平面应变管-土相互作用,结果表明,当管道轨迹偏离纯垂直时,垂直贯入阻力减小,与已发表的相互作用图一致。最后,模拟了自由浮冰-管道-土体的完全耦合相互作用,揭示了管壁厚度和土体强度对浮冰-管道-土体相互作用的影响。描述了数值模拟过程,并详细介绍了考虑密砂特性的土本构模型。
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Simulating the Response of Untrenched Flowlines due to Iceberg-Flowline-Soil Interaction
As offshore oil and gas fields mature on the Grand Banks, offshore Newfoundland and Labrador, marginal field subsea tie-backs are necessary to maintain production levels. Existing untrenched flowline lengths have been limited by the assumption that iceberg contact equates to flowline failure. However, extended tie-backs will be necessary to develop stranded resources. To potentially reduce the number of failure cases, we can consider a better definition of failure that accounts for the pipeline response due to iceberg-soil-pipeline interaction events. Reducing the failure rate from free-floating iceberg contacts alone can significantly increase safe tie-back lengths. This paper examines the flowline response from impacts with free-floating icebergs using large deformation finite element analysis. The plane strain pipe-soil interaction response is first simulated for pure vertical loading and compared against analytical bearing capacity theory. The influence of non-associativity in the soil constitutive model is demonstrated with respect to predicting the pipe drained penetration resistance in dense sands. Oblique vertical-horizontal plane strain pipe-soil interaction is also investigated, and it is shown that the vertical penetration resistance is reduced when the pipe trajectory deviates from pure vertical, consistent with published interaction diagrams. Lastly, the fully coupled interaction scenario of free-floating iceberg-pipe-soil interaction is simulated, showing the effects of the pipe wall thickness and soil strength. The numerical modelling procedures are described and the soil constitutive model that incorporates dense sand behavior is detailed.
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