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COMPUTATIONAL FATIGUE ASSESSMENT OF CHAINS WORKING IN TWISTED CONDITIONS

机译:在扭曲条件下工作的链条的计算疲劳评估

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Chains are extensively used in the Oil and Gas industry for mooring vessels or floating platforms, both for temporary and long-term moorings. Moreover, recently they found a new application in the mooring of floating wind turbines. The integrity of mooring systems is of great importance for both industries. Failure Records [1]-[2] indicate that fatigue of mooring chains is one of the main causes of failure, and therefore their lifetime prediction represents an important challenge for industry. Chains are intended to work under Tension Loading, however, anomalous loading modes such as Out-of-Plane Bending (OPB) or Twisting can appear. For example, OPB caught the attention of engineers after the Girassol incident; where it was identified as the main cause of failure of several chain links eight months after the installation [3]. Since this failure, OPB has attracted the attention of several research programs and multiple publications can be found in the literature (For example, [4]- [5]). Twist may occur during the installation of a chain or during service due to torque generated in the nearby elements of the mooring (for example wire cables). This paper presents a computational fatigue assessment of mooring chains working in twisted conditions. It is based on a two steps analysis: a mechanical and a fatigue analysis. The mechanical analysis accounts for the initial residual stress state of the chain after manufacturing and subsequent proof loading. The result is the stabilized cycle of the multiaxial stress field, which is obtained through an elastic-plastic three-dimensional Finite Element Analysis (FEA). Then, the fatigue analysis is performed to predict the failure location and determine the lifetime. The predicted failure location has shown good agreement with fatigue cracks found in recovered chain links in the North Sea after more than 15 years of service.
机译:链条广泛用于石油和天然气行业,用于停泊船舶或浮动平台,用于临时和长期的停泊。此外,最近他们在浮动风力涡轮机的系泊中找到了一种新的应用。系泊系统的完整性对于这两个行业都非常重要。故障记录[1] - [2]表明系泊链的疲劳是失败的主要原因之一,因此它们的终身预测是行业的重要挑战。链条旨在在张力载荷下工作,但是,可以出现异常的装载模式,例如外平面弯曲(OPB)或扭曲。例如,opb在Girassol事件发生后引起了工程师的注意;在安装后八个月内被确定为几个链路连锁连杆故障的主要原因[3]。由于这种故障以来,opb引起了几种研究计划的注意,并且在文献中可以找到多个出版物(例如,[4] - [5])。在安装链期间或在服务期间可能发生扭转由于在系泊的附近元件中产生的扭矩(例如导线电缆)。本文介绍了在扭曲条件下工作的系泊链的计算疲劳评估。它基于两个步骤分析:机械和疲劳分析。机械分析考虑了制造后链条的初始残余应力状态和随后的证明负载。结果是通过弹性塑料三维有限元分析(FEA)获得的多轴应力场的稳定循环。然后,执行疲劳分析以预测故障位置并确定寿命。预测的失败位置与在15年以上的服务后北海的回收链路中发现的疲劳裂缝吻合良好。

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