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Dynamic Plastic Deformation of Deepwater Steel Catenary Risers Under Extreme Cyclic Compressive Loading

机译:极限循环压缩载荷作用下深水钢悬索的动态塑性变形

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Steel catenary risers (SCRs) on a large-heave-motion vessel are susceptible to compression in the riser touchdown zone (TDZ). Dynamic compression can lead to overstress under extreme or abnormal weather conditions. The response of an SCR under compression is highly nonlinear and sensitive to various factors. However, the current available industry design codes and practices do not provide a clear guidance to address the acceptability of compression, overstress, and the resulting plastic strains. In addition, the current analysis method used in industry common practice cannot capture accurately the nonlinear behavior of an SCR involving accumulated plastic deformation, hysteresis effects, and buckling. In this paper, a finite-element-analysis modeling method that uses combined beam and solid elements is presented. This method enables simulation of large plastic deformation, pipe ovality, and local pipe buckling in the TDZ of a deepwater SCR. The model is developed with Abaqus (Dassault Systemes 2009). The SCR nonlinear response is examined through dynamic analysis of a deep-water SCR that is hung from a semisubmersible. The key analysis results are compared with a nonlinear beam-element model. More-over dynamic-ratcheting analysis under multiple plastic-strain cycles by use of the proposed solid-riser model is conducted to understand the plastic-strain accumulation and to check the acceptability of the survival response of a deepwater SCR under a series of severe hurricanes in its service life. This paper presents the methodology for evaluating the compression and plastic deformation that could be experienced by deepwater SCRs, including the modeling approach, analysis results, possible failure modes, and conclusions. The impact of the ly findings on the robustness and suitability of SCRs for deep-water application is discussed.
机译:大升沉运动船上的钢悬链立管(SCR)在立管着陆区(TDZ)中容易受到压缩。动态压缩会在极端或异常天气情况下导致过大压力。 SCR在压缩下的响应是高度非线性的,并且对各种因素敏感。但是,当前可用的行业设计规范和实践并没有提供明确的指导来解决压缩,超应力以及由此产生的塑性应变的可接受性。此外,当前在行业惯例中使用的分析方法无法准确地捕获SCR的非线性行为,包括累积的塑性变形,滞后效应和屈曲。本文提出了一种结合梁和实体单元的有限元分析建模方法。这种方法可以模拟深水SCR的TDZ中的大塑性变形,管道椭圆度和局部管道屈曲。该模型由Abaqus开发(Dassault Systemes 2009)。 SCR非线性响应通过动态分析悬挂在半潜水器上的深水SCR进行检查。将关键分析结果与非线性梁单元模型进行比较。通过使用拟议的固体上升模型,在多个塑性应变循环下进行了动态棘轮分析,以了解塑性应变累积并检查在一系列严重飓风下深水SCR生存响应的可接受性在使用寿命中。本文介绍了评估深水SCR可能经历的压缩和塑性变形的方法,包括建模方法,分析结果,可能的破坏模式和结论。讨论了ly的发现对SCR在深水应用中的鲁棒性和适用性的影响。

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