Assessing the Impact of Riser-Soil Interaction Model on the Fatigue Life of Large Diameter SCRs

R. Hejazi, A. Grime, M. Randolph, M. Efthymiou
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Abstract

This paper investigates the effect of riser-soil interaction model selection on the assessment of steel catenary riser (SCR) fatigue life for realistic environmental conditions at a deep-water Australian North west shelf (NWS) site. Using a fatigue wave scatter diagram consisting of 100 metocean conditions at the site (combining irregular seas, swell and current), a dynamic time-domain finite element analysis is coupled with the rain-flow cycle counting algorithm in order to determine the fatigue life of SCRs due to first-order motions of the host floater. Rigid, linear elastic and nonlinear riser-soil interaction models are used in order to assess the impact of model selection on the fatigue life of example deep-water SCRs of varying diameter. It is shown that the use of a nonlinear riser-soil interaction model for a representative deep-water NWS site can give an almost two-fold increase in SCR fatigue life over a stiff linear seabed assumption, albeit at a significant computational expense. It is further shown that a recently developed method for calculating equivalent linear soil stiffness may be used in place of the computationally expensive nonlinear approach in order to estimate SCR fatigue life to a reasonable level of accuracy. A methodology for applying the equivalent linear stiffness method to irregular sea-states is proposed and general insight into the selection of the most appropriate soil-riser interaction model for the fatigue analysis of large diameter deep-water SCRs is provided.
立管-土相互作用模型对大直径scr疲劳寿命影响的评估
本文研究了在澳大利亚西北陆架(NWS)深水场地实际环境条件下,立管-土相互作用模型选择对钢悬链线立管(SCR)疲劳寿命评估的影响。利用现场100种气象条件的疲劳波散点图(结合不规则海、涌浪和海流),将动态时域有限元分析与雨流循环计数算法相结合,以确定主浮子一阶运动导致的scr疲劳寿命。采用刚性模型、线弹性模型和非线性立管-土相互作用模型,评估了模型选择对变直径深水scr实例疲劳寿命的影响。研究表明,在一个具有代表性的深水NWS站点上,使用非线性立管-土壤相互作用模型可以使SCR疲劳寿命比刚性线性海底假设增加近两倍,尽管需要大量的计算费用。进一步表明,为了以合理的精度估计SCR疲劳寿命,可以使用最近发展的计算等效线性土壤刚度的方法来代替计算代价高昂的非线性方法。提出了一种将等效线性刚度法应用于不规则海况的方法,并为大直径深水scr的疲劳分析提供了选择最合适的土-隔水管相互作用模型的一般见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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