Study on the Multi-Body Dynamic Characteristics of FPSO Soft Yoke Mooring System Based on Symplectic Algorithm

Wenhua Wu, Lyu Baicheng, Yao Ji, Q. Yue, Zhang Yantao, Xinglin Guo
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引用次数: 1

Abstract

The soft yoke single-point mooring (SYMS) system is the main mooring approach for the floating production storage and offloading (FPSO) unit. As a typical multi-rigid-body system, a SYMS consists of the single-point turret, yoke, mooring legs, and mooring support. It releases the rotational degrees of freedom of an FPSO through the combined effects of multiple joint structures, so as to deliver the weather-vane effect of the FPSO. In this paper, a multi-body dynamics model of the soft yoke mooring system was established. To deal with the difficult integration in the process of solving differential-algebraic equations, a symplectic numerical integration method was proposed on the basis of the Zu Chongzhi method. The proposed solution format had simple symplectic property automatically satisfying the Hamilton system, as well as a high accuracy in solving nonlinear systems. The measured data of the FPSO’s six degrees of freedom (6DoF) under two different sea conditions were selected, and the mooring restoring force of the SYMS was calculated. The calculated results showed that the symplectic solution method could the actual stress state of the structures with more obvious dynamic characteristics. Furthermore, the displacement and stress state of the single-body structures, such as the mooring legs and yoke, and the analysis result could comprehensively evaluate the overall working state of the SYMS.
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基于辛算法的FPSO软刚臂系泊系统多体动力学特性研究
软轭单点系泊(SYMS)系统是浮式生产储卸(FPSO)装置的主要系泊方式。作为一种典型的多刚体系统,SYMS由单点转塔、轭、系泊腿和系泊支架组成。它通过多个接头结构的联合作用来释放FPSO的旋转自由度,从而实现FPSO的风向标效应。建立了软刚臂系泊系统的多体动力学模型。针对微分代数方程求解过程中积分困难的问题,在祖冲之方法的基础上,提出了一种辛数值积分法。所提出的解格式具有简单的辛性质,能自动满足Hamilton系统,求解非线性系统具有较高的精度。选取FPSO六自由度(6DoF)在两种不同海况下的实测数据,计算SYMS的系泊恢复力。计算结果表明,辛解法能较好地反映结构的实际应力状态,具有较明显的动力特性。此外,对系泊腿、轭架等单体结构的位移和应力状态以及分析结果可以综合评价SYMS的整体工作状态。
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