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Estimation of flexible riser curvature distribution and bend stiffener polyurethane behavior using the Levenberg-Marquardt algorithm in full scale bending-tension tests

机译:估计柔性立管曲率分布和使用Levenberg-Marquardt算法在满量程弯曲张力试验中的弯曲加强筋的聚氨酯行为

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摘要

Long term full-scale bending-tension tests are traditionally performed to verify the numerically estimated flexible riser lifetime. For a proper tensile armour stress calculation, the riser curvature distribution has to be accurately determined, being highly affected by the bend stiffener polyurethane response. The actual material response may be significantly influenced by the loading rate, environmental temperature and humidity, ageing and self-heating phenomenon, requiring an extensive experimental campaign in addition to advanced constitutive models. In this work, an inverse problem methodology is proposed to decrease riser curvature distribution estimation uncertainties by combining optical configuration measurements, a direct finite element model and the Levenberg-Marquardt algorithm to estimate a representative polyurethane response. A full-scale riser/bend stiffener bending-tension test is conducted and an optical monitoring system is employed to track photoluminescence targets along the system length to estimate its deformed configuration. Five tests are performed and eight targets close to the bend stiffener tip selected for the inverse calculation of a representative bend stiffener hyperelastic response and riser top tension. The remaining target displacements and the tension measured with a load cell are employed for validation. The case study shows an excellent correlation between the numerically calculated deformed configuration and experimental measurements with the verification targets.
机译:传统上,长期全尺寸弯曲张力测试是为了验证数值估计的柔性提升机寿命。对于适当的拉伸装甲应力计算,必须精确地确定提升管曲率分布,受到弯曲加强筋聚氨酯反应的影响。实际的材料响应可能会受到加载速率,环境温度和湿度,老化和自加热现象的显着影响,这是针对先进的本构模型之外的广泛实验活动。在这项工作中,提出了一种逆问题方法,以通过组合光学配置测量,直接有限元模型和levenberg-Marquardt算法来降低提升曲率分布估计不确定性来估计代表性聚氨酯响应。进行全规模的提升机/弯曲加强筋弯曲张力测试,并且使用光学监测系统沿系统长度跟踪光致发光目标以估计其变形的配置。执行五个测试,并且靠近弯曲加强尖端的八个目标,选择用于代表性弯曲加强筋的超弹性响应和提升机顶部张力的逆计算。使用剩余的目标位移和用负载电池测量的张力用于验证。案例研究表明,使用验证目标的数值计算出的变形配置和实验测量之间的优异相关性。

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