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EFFECT OF LATERAL PIPE-SOIL INTERACTION ON CONTROLLED LATERAL BUCKLING USING PRE-DEFORMED PIPELINE

机译:土-土相互作用对预变形管道控制侧向屈曲的影响

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A novel approach to eliminate the onset of global buckling in pipelines is investigated in the paper. The method is based on pre-deforming a pipeline continuously with a specific wavelength and amplitude prior to installation on the seabed. The response of the pipeline to applied high temperature and pressure was studied in conjunction with variations in the lateral pipe-soil interaction (PSI) - both as uniform friction along the pipe and also with locally varying friction. Pipe and seabed parameters representing a typical wet-insulated infield flow line on soft clay are used. The pre-deformed pipeline has a higher buckle initiation temperature compared to a straight pipeline due to the reduced effective axial force build-up resulting from the low axial stiffness generated by the pre-deformed lobes along the pipeline. The results from this paper show that the strains in the pre-deformed pipeline are not significantly affected by the local variability of lateral PSI but rather by the global mean PSI. At a typical lateral soil resistance, i.e. a friction coefficient of 0.5, lateral buckling occurs at a very high temperature level that is not common in the subsea operation. At a very low friction, i.e. 0.1, lateral buckling occurs at a lower operating temperature but the strain is insignificant. The longitudinal strain of the pipeline is not highly sensitive to the lateral PSI, which is a quite different response to an initially straight pipeline. Therefore, this method could prove to be a valuable tool for the subsea industry as it enables the pipeline to be installed and operated safely at very high temperatures without the need for lateral buckling design and installation of expensive structures as buckle initiators. Even if the pre-deformed pipeline buckles at a very high temperature, during cycles of heat-up and cool-down the buckle shape 'shakes down' by geometric rearrangement to minimize the energy, and in doing so creates a series of 'short pipelines' in which the longitudinal strain is self-controlled. The system is therefore shown to be very robust in the conditions investigated and not affected by one of the biggest unknowns in seabed pipeline engineering, which is the local variability in lateral PSI.
机译:本文研究了一种新颖的方法来消除管道中整体屈曲的发生。该方法基于在安装到海床上之前以特定的波长和振幅连续地对管道进行预变形。研究了管道对施加的高温和高压的响应,以及管道与土壤之间的横向相互作用(PSI)的变化-沿管道的均匀摩擦和局部变化的摩擦。使用的管道和海床参数代表软粘土上的典型湿绝缘场内流线。与直管道相比,预变形管道具有更高的弯曲起始温度,这是由于预变形凸角沿管道产生的轴向刚度低而导致有效轴向力的降低。本文的结果表明,预变形管道中的应变不受侧向PSI的局部变化的影响较大,而受整体平均PSI的影响较大。在典型的横向土壤阻力下,即摩擦系数为0.5,在非常高的温度水平下会发生横向屈曲,这在海底作业中并不常见。在非常低的摩擦,即0.1时,在较低的工作温度下会发生横向屈曲,但应变不明显。管道的纵向应变对横向PSI高度不敏感,这对最初的直线管道是完全不同的响应。因此,该方法对于海底行业可能是一种有价值的工具,因为它使管道可以在非常高的温度下安全地安装和运行,而无需横向屈曲设计和安装昂贵的扣环起爆器。即使预变形的管道在非常高的温度下弯曲,在加热和冷却的循环中,弯曲的形状也会通过几何重排而“摇晃”以最小化能量,从而形成一系列“短管道”其中纵向应变是自控的。因此,该系统在所研究的条件下显示出非常强大的性能,并且不受海底管道工程中最大的未知因素之一的影响,这是横向PSI的局部变化。

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