基于残余曲率法的深水管道侧向屈曲可行性研究

Q. Bai, Fengbin Xu, M. Brunner
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摘要

近年来,在一些浅水工程中,利用残余曲率法为控制和减轻管道侧向屈曲提供了屈曲起爆点。通过适当规划使用RC截面的可控屈曲,实现了可接受的管道就地行为设计。然而,RC方法尚未在深水管道中得到应用。在深水管道中,钢筋混凝土截面在弯曲段安装过程中存在扭转现象,海底铺设钢筋混凝土截面的方向难以控制。在深水地层中,rc截面定向对原位侧向屈曲的影响尚不清楚。Abaqus有限元软件套件中的FRIC用户子程序已经开发出来,用于基于不耦合的轴向和横向土壤阻力对管道-土壤相互作用进行建模,这些阻力假定与管道在初始嵌入土壤表面后的垂直渗透无关。然而,扭曲的钢筋混凝土截面的穿深与海底的正常管道有很大的不同。选择Abaqus中的winter用户子程序来呈现三维管道-土壤相互作用,该相互作用更准确地将独立轴向和横向土壤阻力的变化作为管道穿透的函数。在本研究中使用winter来解释土壤渗透对软粘土中钢筋混凝土截面管道侧向屈曲性能的影响。分析结果表明:在安装过程中,RC截面在弯曲区域发生扭转,扭转角在RC截面与海底接触前达到最大值;安装分析完成后,进行原位侧屈曲分析。分析结果表明,将钢筋混凝土法作为深水管道主要的屈曲触发机制是可行的,并揭示了钢筋混凝土方向对管道原位性能在强度和疲劳损伤方面的影响(文中仅给出了用于疲劳计算的应力范围)。
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Feasibility Study of Lateral Buckling Using Residual Curvature Method for Deep Water Pipelines
In recent years the residual curvature (RC) method has been used to provide buckle initiators to control and mitigate the lateral buckling of pipelines for some shallow water projects. With the appropriate planning of the controlled buckles using RC sections, an acceptable design of the pipeline in-place behavior is achieved. However, the RC method has not yet been applied to deep-water pipelines. The twist of RC sections in the sagbend during installation has been observed, and the orientation of as-laid RC section on the seabed is difficult to control in deep-water pipelines. The effects of as-laid RC-section orientation on in-place lateral buckling in deep water are unknown. The FRIC user subroutine in the Abaqus finite-element software suite has been developed for modelling pipe-soil interactions based on uncoupled axial and lateral soil resistances that are assumed to be independent of vertical pipe penetration after initial embedment into the soil surface. However, the penetration of a twisted RC section can vary dramatically from a normal pipeline on the seabed. The UINTER user subroutine in Abaqus was selected for presenting 3D pipe-soil interactions that incorporate the variations of independent axial and lateral soil resistances as a function of pipe penetration more accurately. UINTER is used in the present study to account for the effects of soil penetration on the lateral buckling performance of a pipeline with RC sections in soft clay. The analysis results show that the RC section twists in the sagbend area during installation, and the twist angle reaches its maximum value just prior to the RC section touching the seabed. The in-place lateral buckling analysis is carried out after the installation analysis is finished. The analysis results demonstrate the feasibility of applying the RC method as the primary buckle triggering mechanism for deep water pipelines, and it shows how the RC orientation affects the pipeline in-place performance in terms of strength and fatigue damage (only the stress ranges for use in fatigue calculations are shown in the paper).
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