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FATIGUE ANALYSIS OF SUBSEA JUMPERS DUE TO SLUG FLOW

机译:团状流引起的BS跳跃者的疲劳分析

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Rigid steel jumpers are used in a subsea flow line system to connect subsea components. They provide a certain flexibility with respect to installation and operating conditions. This flexibility makes the jumper susceptible to slug flow induced vibrations. Slug flow can be described as an alternating flow of long oil and gas bubbles which flow at the gas velocity. The alternation between oil and gas density causes loads on the jumper which causes the jumper to vibrate. Two excitation mechanisms can be identified; 1) The variation in weight along the straight sections and 2) the difference in impact loads on the bends. Due to the cyclic nature of these loads fatigue can cause the jumper to fail. As a main contractor of SURF-projects (Subsea Umbilicals Risers and Flowlines) Heerema Marine Contractors (HMC) is responsible for the engineering, procurement, construction and installation (EPCI) of the entire project scope, including the design of the subsea jumpers. Hence this paper has been set up by HMC and the Delft University of Technology to study slug flow induced fatigue in subsea jumpers and in order to find new design considerations. In the early design phase of a subsea jumper the offshore industry commonly uses, to authors knowledge, a static analysis to predict the fatigue damage caused by slug flow. Since the vibrations caused by slug flow are not incorporated in a static analysis an accurate tradeoff between flexibility and fatigue lifetime cannot be made during the design phase. As this tradeoff during the design phase is desirable, a new dynamic and more accurate analysis method has been developed which takes these vibrations into account. A comparison between this new methodology and the common industry method is made in order to quantify the difference in analyzed fatigue damage due to slug flow induced vibration. Additionally the effects of a pressure drop over a passing slug is also investigated to determine if a pressure drop should be incorporated as a design factor for slug flow induced fatigue. The new dynamic method will also be used to investigate the relation between jumper configuration and high slug flow velocity. It will show what excitation mechanisms are dominant and how this affects the fatigue behavior. Since is be the first time, to authors knowledge, such an extensive analysis of geometries and velocities is undertaken it will provide new insights into slug flow induced fatigue in subsea jumpers in general. The newly found amplification and attenuation of the vibration by the successive impacts on the bends of a subsea jumper are investigated.
机译:刚性钢跳线用于海底流水线系统中,以连接海底组件。它们在安装和操作条件方面提供了一定的灵活性。这种灵活性使跳线容易受到团状流引起的振动的影响。塞流可被描述为以气体速度流动的长气泡和气泡的交替流。油气密度之间的交替会引起跳线上的负载,从而导致跳线振动。可以确定两种激励机制。 1)沿直线部分的重量变化,以及2)弯头上冲击载荷的差异。由于这些负载的周期性,疲劳会导致跳线失效。作为SURF项目的主要承包商(海底脐带缆和输油管),Heerema海上承包商(HMC)负责整个项目范围的工程,采购,建造和安装(EPCI),包括海底跳线的设计。因此,HMC和代尔夫特理工大学建立了这篇论文,以研究弹跳引起的海底跳线疲劳,并寻找新的设计考虑因素。据作者所知,在海底跳线的早期设计阶段,海上工业通常使用静态分析来预测由流引起的疲劳损伤。由于在静态分析中未包含由团状流引起的振动,因此在设计阶段无法在柔韧性和疲劳寿命之间进行精确的权衡。由于在设计阶段需要这种折衷,因此已经开发了一种新的动态且更准确的分析方法,其中考虑了这些振动。对此新方法与通用工业方法进行了比较,以便定量分析由于团状流引起的振动而导致的疲劳损伤分析。另外,还研究了通过的块上的压降的影响,以确定是否应将压降作为块流引起的疲劳的设计因素。新的动态方法也将用于研究跳线配置和高弹头流速之间的关系。它将显示出主要的激励机制,以及这如何影响疲劳行为。据作者所知,这是第一次,对几何形状和速度进行了广泛的分析,它将为一般水下跳线中的塞流引起的疲劳提供新的见解。研究了新发现的,对海底跳线的弯头相继冲击造成的振动放大和衰减。

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