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PREDICTION OF LINER WRINKLING DURING HIGH STRAIN BENDING OF MECHANICALLY LINED PIPE

机译:机械衬里管材高应变弯曲过程中衬里起皱的预测

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A high demand for transport of corrosive fluids subsea has generated interest in solid corrosion resistant alloy (CRA) and bi-metal pipes. Bi-metal pipes, including hot-roll bonded (HRB) clad and mechanically lined pipes (MLP), are made of a carbon steel (CS) pipe lined with a CRA layer. Mechanically lined pipes, where the CRA liner is held inside the host pipe by means of an interference fit, offer shorter lead times and are considerably more economical than equivalent solid CRA and HRB clad pipes with a metallurgical bond between CS and CRA layers. Reel-lay is a cost-effective method for installing subsea pipelines up to 18" (457.2 mm) in diameter. However, plastic straining associated with reeling may trigger wrinkling of the CRA liner. Two approaches for safe installation of reeled MLPs have therefore been proposed: pressurised and non-pressurised reeling. This paper focuses on reel-lay installation at atmospheric pressure. Nevertheless, the numerical analysis framework presented is also applicable to MLPs installed at elevated pressure in a scenario where they are subjected to bending after being depressurised. Small-scale mechanical tests were carried out to assess the effect of manufacturing and cyclic plastic bending on the tensile behaviour of the CRA liner. After full-scale bending trials had been undertaken, they were simulated numerically to demonstrate the suitability of the proposed numerical approach for predicting liner separation from the host pipe and subsequent wrinkling during high strain bending. To improve ovality prediction, which governs liner separation and wrinkling, the authors developed an advanced metal plasticity model.
机译:海底对腐蚀性流体的高需求引起了人们对固态耐腐蚀合金(CRA)和双金属管的兴趣。双金属管道,包括热轧结合(HRB)包层和机械衬里管道(MLP),均由衬有CRA层的碳素钢(CS)管道制成。机械衬里的管道,其中CRA衬套通过过盈配合固定在主管内,提供的交货时间更短,并且比等效的CRA和HRB包层的具有CS和CRA层之间的冶金结合的实心管道更为经济。卷盘铺设是一种经济有效的方法,用于安装直径最大为18英寸(457.2毫米)的海底管线。但是,与卷盘相关的塑性应变可能会触发CRA衬里起皱。因此,安全安装卷盘MLP的两种方法是本文主要针对常压下的卷盘铺设,尽管如此,所提供的数值分析框架也适用于在高压下安装的MLP,这些MLP在减压后会发生弯曲。进行了小规模的机械测试,以评估制造和循环塑性弯曲对CRA衬板拉伸性能的影响,在进行了全面的弯曲试验后,进行了数值模拟,以证明所提出的数值方法的适用性用于预测衬管与主管之间的分离以及在高应变弯曲过程中的后续起皱。预测衬里分离和起皱的线性预测,作者开发了一种先进的金属可塑性模型。

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