首页> 外文会议>International conference on ocean, offshore and arctic engineering;OMAE2009 >DESIGN CHALLENGES AND EXPERIENCE WITH CONTROLLED LATERAL BUCKLE INITIATION METHODS
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DESIGN CHALLENGES AND EXPERIENCE WITH CONTROLLED LATERAL BUCKLE INITIATION METHODS

机译:侧向屈曲控制方法的设计挑战和经验

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Subsea pipelines are increasingly being required to operate at higher temperatures and pressures. The natural tendency of such a pipeline is to relieve the resulting high axial stress in the pipe-wall by buckling. Uncontrolled buckling can have serious consequences for the integrity of a pipeline. An elegant and cost-effective design solution to this problem is to work with rather than against the pipeline by controlling the formation of lateral buckles along the pipeline.Controlled lateral buckling is a relatively new design option which has matured as more projects have adopted the approach. As with all new design techniques, knowledge and understanding has improved and evolved with design application, installation and operational experience. Methods used to control the formation of lateral buckles include snake lay, vertical upsets, localised weight reduction and local seabed imperfections. Selecting the right buckle initiation method for a flowline can be a complex issue which is influenced by the flowline type, operating conditions, environmental conditions and pipe-soil interaction. Detailed lateral buckling design is normally concerned with achieving reliable buckle formation, minimising the peak strains in the flowline (local buckling) and controlling through life girth weld fatigue. However, as lateral buckling design has progressed, other design challenges have become apparent, which must be considered during design.This paper discusses commonly used buckle initiation methods and focuses on the key design challenges associated with lateral buckling, in the light of feedback from operational experience of recently installed flowlines. Many of the designchallenges are common to all initiation methods, such as pipe-soil interaction or girth weld fatigue. However, there are a number of issues which can be specific to a particular buckle control method or pipeline project, these can include sour service operating conditions or complex flow assurance implications. The paper highlights key information required for lateral buckling design and outlines typical test programmes performed to support the design process. Crucially, many of the flowline design issues identified in this paper have been identified as a result of lessons learnt from operational experience. This affirms the importance of rigorous visual inspection and survey to monitor the performance of flowlines during the first months and years after start-up.
机译:越来越需要海底管道在更高的温度和压力下运行。这样的管道的自然趋势是通过屈曲来减轻在管道壁中产生的高轴向应力。失控的屈曲会严重影响管道的完整性。解决此问题的一种优雅且具有成本效益的设计解决方案是通过控制沿管道的侧向扣的形成而不是与管道对接。 受控的横向屈曲是一个相对较新的设计方案,随着更多项目采用该方法,该方案已经成熟。与所有新的设计技术一样,知识和理解随着设计应用程序,安装和操作经验的提高和发展。用于控制侧向扣形成的方法包括蛇行,垂直起伏,局部减重和局部海床缺陷。为流水线选择正确的带扣起爆方法可能是一个复杂的问题,受流水线类型,操作条件,环境条件和管土相互作用的影响。详细的横向屈曲设计通常涉及实现可靠的屈曲形成,最大程度地减小流水线中的峰值应变(局部屈曲)以及控制整个寿命周长的焊接疲劳。但是,随着横向屈曲设计的发展,其他设计挑战也变得显而易见,在设计过程中必须考虑这些挑战。 本文讨论了常用的扣紧起爆方法,并根据最近安装的流水线的运行经验反馈,重点探讨了与横向屈曲相关的关键设计挑战。许多设计 所有引发方法都面临挑战,例如管-土相互作用或环焊缝疲劳。但是,有许多问题可能特定于特定的扣环控制方法或管道项目,这些问题可能包括酸性服务操作条件或复杂的流量保证含义。本文重点介绍了横向屈曲设计所需的关键信息,并概述了为支持设计过程而执行的典型测试程序。至关重要的是,本文中确定的许多流水线设计问题都是根据从运营经验中吸取的教训而确定的。这肯定了在启动后的最初几个月和几年中,进行严格的目视检查和调查以监测出油管性能的重要性。

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