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REQUIRED LINEPIPE PROPERTIES FOR HIGH STRAIN APPLICATIONS AND POSSIBLE RESOLUTION BY PIPE MANUFACTURING TECHNOLOGY

机译:用于高应变应用的所需线管属性和管道制造技术的可能分辨率

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Application of strain based design to pipelines in arctic or seismic areas has recently been recognized as important. So far, there has been much study performed on tensile strain limit and compressive strain limit. However, the relationship between bending buckling (compressive strain limit) and tensile strain limit has not been discussed. A model using actual stress strain curves suggests that the tensile strain limit increases as Y/T rises under uniaxial tensile stress because a pipe manufacturer usually raises TS instead of lowering YS to achieve low Y/T. Under bending of a pipe with a high D/t, an increase in compressive strain on intrados of a bent pipe at the maximum bending moment (ε-cp~*) improves the tensile strain limit because the tensile strain limit is controlled by the onset of buckling or ε-cp~* which is increased by lowering Y/T. On the other hand, under bending of a pipe with a low D/t, the tensile strain limit may not be influenced by improvement of buckling behavior because tensile strain on the extrados is already larger than the tensile limit at ε-cp~*. Finally, we argue that the balance of major linepipe properties is important. Efforts other than the strict demands for pipe properties are also very important and inevitable to improve the strain capacity of a pipeline.
机译:基于应变的设计在北极或地震区管道中的应用最近被认为是重要的。到目前为止,对拉伸应变极限和压缩应变极限进行了许多研究。然而,尚未讨论弯曲屈曲(压缩应变极限)和拉伸应变极限之间的关系。使用实际应力应变曲线的模型表明,在单轴拉伸应力下Y / T上升时拉伸应变极限增加,因为管道制造商通常升高TS而不是降低y以实现低Y / T。在具有高D / T的管道的弯曲下,在最大弯曲力矩(ε-cp〜*)处的弯曲管道上的压缩应变增加(ε-cp〜*)改善了拉伸应变极限,因为拉伸应变极限由发出控制屈曲或ε-cp〜*通过降低y / t而增加。另一方面,在具有低D / T的管的弯曲下,拉伸应变极限可能不会受到屈曲行为的改善的影响,因为extrados上的拉伸应变已经大于ε-cp〜*的拉伸极限。最后,我们认为主要线管的平衡是重要的。除了对管道特性的严格要求之外的努力也非常重要,不可避免,以提高管道的应变能力。

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