An Inverse Problem for Parameter Estimation in a Bend Stiffener System

Yangye He, M. Vaz, M. Caire
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引用次数: 0

Abstract

The top connection of the flexible pipe attached to the platform supporting structure is considered to be a critical area as it sustains the highest forces and often the maximum curvature in the riser system. Bend stiffener, a polymeric structure with conical shape, is employed to limit the maximum curvature of the riser at the uppermost connection, and protect it against excessive bending and accumulative fatigue damage. In this work, an inverse problem methodology is proposed for estimating unknown parameters in the bend stiffener system, based on a large displacement beam theoretical model combined with the Levenberg-Marquardt Method. The global mathematical formulation is used for nonlinear analysis of the riser/bend stiffener system considering linear elastic symmetric material. A case study is given considering simulated angle measurements in five monitoring positions to estimate two unknown parameters in the system, top tension and polyurethane Young’s modulus. Monte Carlo method is employed to analyze the statistic properties of the estimated parameters with measurement errors. The effects of sensor locations and measurement error ranges on the accuracy of parameter estimation are investigated. It is shown that the proposed procedure can estimate efficiently and accurately unknown parameters in a bend stiffener system. The parameter estimation procedure can also be used to assess other mechanical parameters of the bend stiffener system by angle measurements in certain monitoring positions in realistic production systems.
弯曲加强系统参数估计的反问题
连接到平台支撑结构上的柔性管的顶部连接处被认为是一个关键区域,因为它在立管系统中承受最大的力,并且通常是最大的曲率。弯曲加强筋是一种锥形聚合物结构,用于限制最上层连接处立管的最大曲率,并防止过度弯曲和累积疲劳损伤。本文基于大位移梁理论模型,结合Levenberg-Marquardt方法,提出了一种估算弯筋系统未知参数的反问题方法。采用全局数学公式对考虑线弹性对称材料的立管/弯筋系统进行非线性分析。通过五个监测位置的模拟角度测量来估计系统中的两个未知参数:顶部张力和聚氨酯杨氏模量。采用蒙特卡罗方法分析了测量误差下估计参数的统计特性。研究了传感器位置和测量误差范围对参数估计精度的影响。结果表明,该方法能有效、准确地估计弯筋系统中的未知参数。参数估计程序也可用于在实际生产系统中,通过在某些监测位置进行角度测量来评估弯曲加强器系统的其他力学参数。
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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