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Development of a constitutive model to simulate unbonded flexible riser pipe elements

机译:开发一种模拟无粘结柔性立管元件的本构模型

摘要

The principal objective of this investigation is to develop a constitutive model to simulate the hysteresis behaviour of unbonded flexible risers. A new constitutive model for flexible risers is proposed and a procedure for the identification of the related input parameters is developed using a multi-scale approach. The constitutive model is formulated in the framework of an Euler-Bernoulli beam model, with the addition of suitable pressure terms to the generalised stresses to account for the internal and external pressures, and therefore can be efficiently used for large-scale analyses. The developed non-linear relationship between generalised stresses and strains in the beam is based on the analogy between frictional slipping between different layers of a flexible riser and frictional slipping between micro-planes of a continuum medium in nonassociative elasto-plasticity. Hence, a linear elastic relationship is used for the initial response in which no-slip occurs; an onset-slip function is introduced to define the ‘noslip’ domain, i.e. the set of generalised stresses for which no slip occurs; a nonassociative rule with linear kinematic hardening is used to model the full-slip phase. The results of several numerical simulations for a riser of small-length, obtained with a very detailed (small-scale) non-linear finite-element model, are used to identify the parameters of the constitutive law, bridging in this way the small scale of the detailed finite-element simulations with the large scale of the beam model. The effectiveness of the proposed method is validated by the satisfactory agreement between the results of various detailed finite-element simulations for a short riser, subject to internal and external uniform pressures and cyclic bending and tensile loadings, with those given by the proposed constitutive law. The merit of the present constitutive law lies in the capturing of many important aspects of risers structural response, including the energy dissipation due to frictional slip between layers and the hysteretic response. This privilege allows one to accurately study the cyclic behavior of unbonded flexible risers subject to axial tension, bending moment, internal and external pressures.
机译:这项研究的主要目的是建立一个本构模型来模拟未粘结挠性立管的滞后行为。提出了一种新的柔性立管本构模型,并采用多尺度方法开发了相关输入参数的识别程序。本构模型是在Euler-Bernoulli梁模型的框架内制定的,并在广义应力中添加了适当的压力项以解决内部和外部压力,因此可以有效地用于大规模分析。梁中广义应力与应变之间发展起来的非线性关系是基于柔性立管不同层之间的摩擦滑移与连续介质非微弹塑性的微平面之间的摩擦滑移之间的类比。因此,线性弹性关系用于不发生滑动的初始响应。引入了滑移函数来定义“滑移”域,即没有滑移的广义应力集;使用具有线性运动学硬化的非关联规则来模拟完整滑移阶段。使用非常详细的(小型)非线性有限元模型获得的小长度立管的几个数值模拟结果,可用于识别本构定律的参数,以这种方式桥接小尺度大型梁模型的详细有限元模拟分析。通过对短立管进行各种详细的有限元模拟的结果(受内部和外部均匀压力以及周期性弯曲和拉伸载荷的影响)与拟议的本构关系给出的令人满意的一致性,验证了该方法的有效性。本构法的优点在于可以捕获立管结构响应的许多重要方面,包括由于层之间的摩擦滑移和滞后响应引起的能量耗散。这种特权使人们能够准确地研究未粘结的柔性立管在轴向张力,弯矩,内外压力作用下的循环行为。

著录项

  • 作者

    Bahai H; Bahtui Ali;

  • 作者单位
  • 年度 2008
  • 总页数
  • 原文格式 PDF
  • 正文语种 English
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