首页> 外文会议>International conference on ocean, offshore and arctic engineering;OMAE2009 >FATIGUE LIFE PREDICTION DUE TO SLUG FLOW IN EXTRA LONG SUBMARINE GAS PIPELINES USING FOURIER EXPANSION SERIES
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FATIGUE LIFE PREDICTION DUE TO SLUG FLOW IN EXTRA LONG SUBMARINE GAS PIPELINES USING FOURIER EXPANSION SERIES

机译:傅里叶扩展系列预测超长水下天然气管道塞流的疲劳寿命。

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Some offshore gas production fields require transporting of production fluids through very long submarines pipelines, without a previous separation process. In these cases, a slug flow pattern may develop for some production conditions. Condensate slugs traveling in the pipeline, act as moving loads for the piping structure, especially for the unsupported pipe spans which can be of even hundreds of meters long, due to irregular sea bottom, therefore producing a dynamic response of the pipeline that in some cases may significantly reduce its fatigue life. In this work a previously presented model [1], which combines fluid equations for predicting slug characteristics and a structural finite element model of horizontal pipelines transporting slugs, is modified for reducing computational cost and to adapt fatigue life calculations to the case of submarine piping. In order to calculate maximum amplitudes of the dynamic response without a time integration scheme, it is considered that traveling slugs produce periodical loads in time for every spatial point of the pipeline, and consequently these loads may be expressed by means of Fourier expansion series. With these assumptions, a more realistic fatigue calculation for a diversity of pipelines conditions is obtained. Results show that for this improved model computational time is dramatically reduced, without a lost in precision, when compared to the previous model requiring a time integration process.
机译:一些海上天然气生产领域需要通过很长的潜艇管道输送生产流体,而无需事先进行分离。在这些情况下,对于某些生产条件,可能会形成团状流型。在管道中移动的凝结团块,作为管道结构的移动载荷,特别是由于海底不规则而导致的长达数百米的无支撑管道跨度,因此会产生管道的动态响应,在某些情况下会产生动态响应可能会大大降低其疲劳寿命。在这项工作中,以前提出的模型[1]结合了用于预测团块特性的流体方程和水平管道运输团块的结构有限元模型,从而降低了计算成本,并使疲劳寿命计算适合海底管道的情况。为了在没有时间积分方案的情况下计算动态响应的最大幅度,可以认为行进的段塞会在管道的每个空间点上及时产生周期性的载荷,因此这些载荷可以通过傅立叶展开级数来表示。利用这些假设,可以获得针对各种管道条件的更为实际的疲劳计算。结果表明,与以前的需要时间积分过程的模型相比,这种改进的模型可以显着减少计算时间,而不会降低精度。

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