Vessel/Stinger/Pipeline Fully Coupled Analysis for Pipelaying Operation

Bonjun Koo, Qin Tu, Jiaqi Wang, Sachin Mathakari
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Abstract

During pipelaying operations, dynamic performance of the stinger due to vessel motion has a strong impact on the stinger capacity estimation. However, the conventional stinger structural design is based on the maximum load on the roller boxes corresponding to a target top tension value. In addition, the installation analysis uses the uncoupled vessel motion Response Amplitude Operators (RAOs) to calculate the motion induced loads on the stinger and the pipeline. Since the maximum loads on the stinger are conservatively estimated by linearly superimposing maximum forces from different loading conditions, the conventional design and analysis approach leads to either over-design of the stinger structure or underestimation of the stinger capacity. To improve conventional pipelaying design and analysis methodologies, a time domain vessel/stinger/pipeline Fully Coupled Analysis (FCA) is presented in this study. The new analysis procedure significantly improved the stinger operation limit compared to the conventional design and analysis procedure.
管道作业的容器/推力杆/管道全耦合分析
在铺管作业中,由于管道运动引起的推力杆动态性能对推力杆容量的估计有很大的影响。然而,传统的推力杆结构设计是基于与目标顶张力值相对应的滚轮箱上的最大载荷。此外,安装分析使用非耦合容器运动响应振幅算子(RAOs)来计算推力杆和管道上的运动诱导载荷。由于推力杆上的最大载荷是通过线性叠加不同载荷条件下的最大力来保守估计的,传统的设计和分析方法要么导致推力杆结构的过度设计,要么导致推力杆容量的低估。为了改进传统的管道设计和分析方法,本研究提出了一种时域容器/推力杆/管道全耦合分析(FCA)。与传统的设计和分析程序相比,新的分析程序显著提高了推力杆的操作极限。
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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