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Fracture Control Offshore Pipelines - Advantages of using direct calculations in fracture assessments of pipelines

机译:海洋管道断裂控制-在管道断裂评估中使用直接计算的优势

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Surface cracks pose major challenges for the structural integrity of pipelines. In fracture assessment programs the use of constraint parameters, such as the T-stress, along with K, J or CTOD are important to account for the limitations of single-parameter fracture mechanics. However, the three-dimensional nature of surface cracks precludes detailed 3-D finite element modeling for routine calculations. Here line-spring/shell-element models are demonstrated to be an efficient and reasonably accurate tool for constraint estimation even under large deformation levels when general yielding prevails in the Pipe-Envisaging the potential use of this procedure in fracture analysis of pipelines, a new software, LINKpipe, has been developed. The program has been developed as a part of the Joint Industry project Fracture Control Offshore Pipelines. The objective of this project is to study the behaviour of defected girth welds in pipelines subject to construction and operational loads ever experienced before. The calculations have been performed in close cooperation with the project participants; see presentations of project-colleagues at OMAE 2005: Bruschi et al (2005), 0stby (2005), Nyhus et al (2005) and Sandvik et al (2005). In this paper the line-spring calculations are compared with 3-D FE calculations and computations according to BS 7910. A pipe geometry, with OD=400mm, was selected for the comparisons. The line-spring calculations were close to the 3-D calculations, while BS7910 was very conservative for long cracks and unconservative for short cracks. In highly ductile materials, such as pipeline steels, considerably amount of stable crack growth can be tolerated prior to the final failure of the structure. A simple method for simulating ductile tearing in surface cracked pipes with the line-spring model has been developed. A detailed parametric study has been performed to examine the effect of ductile tearing for pipes loaded in tensile, bending and with internal pressure. A significant reduction in deformation capacity from the stationary case is noticed. As the crack depth increases, the effect of ductile tearing becomes more important. And under biaxial loading a significant reduction of the deformation capacity is found as the internal pressure is increased. The development of the line-spring methodology paves the way for a transition from to-days rule-based design to direct calculations.
机译:表面裂纹对管道的结构完整性提出了重大挑战。在断裂评估程序中,使用约束参数(例如T应力)以及K,J或CTOD对于解决单参数断裂力学的局限性很重要。但是,表面裂纹的三维性质阻碍了常规计算的详细3D有限元建模。在这种情况下,线弹簧/壳单元模型被证明是一种有效且合理准确的工具,即使在管道中普遍存在屈服的情况下,即使在大变形水平下,也可以在大变形水平下进行约束估计。已经开发了LINKpipe软件。该程序是作为联合工业项目“裂缝控制海上管道”的一部分开发的。该项目的目的是研究受过以往施工和操作负荷影响的管道中缺陷环缝焊缝的行为。与项目参与者密切合作进行了计算;参见OMAE 2005上项目同事的演讲:Bruschi等人(2005),0stby(2005),Nyhus等人(2005)和Sandvik等人(2005)。在本文中,将线弹簧计算与3-D FE计算和根据BS 7910进行的计算进行了比较。为比较选择了OD = 400mm的管道几何形状。线弹簧计算接近于3-D计算,而BS7910对于长裂纹非常保守,而对于短裂纹则不保守。在高延展性材料(例如管道钢)中,在结构最终失效之前,可以忍受相当数量的稳定裂纹增长。已经开发出一种简单的方法,利用线弹簧模型来模拟表面裂纹管道中的延性撕裂。已经进行了详细的参数研究,以检查在拉伸,弯曲和内部压力作用下的管道的韧性撕裂的影响。注意到固定盒的变形能力大大降低。随着裂纹深度的增加,延展性撕裂的影响变得更加重要。在双轴载荷下,随着内部压力的增加,变形能力显着下降。线性弹簧方法的发展为从当今基于规则的设计过渡到直接计算铺平了道路。

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