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STRAIN CAPACITY PREDICTION OF STRAIN-BASED PIPELINES

机译:应变管道的应变能力预测

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Strain-based design (SBD) is used to complement conventional allowable stress design for pipelines operated in environments with potentially large ground movements such as those found in permafrost and seismically active regions. Reliable and accurate prediction of tensile strain capacity (TSC) plays a critical role in strain-based design. As reported previously over the past 6+ years, a comprehensive experimental and numerical program was undertaken to characterize the TSC of welded pipelines, develop a finite element analysis (FEA) approach and equations capable of predicting TSC, and establish a strain-based engineering critical assessment (SBECA) methodology. The previous FEA model and TSC equations were validated against about 50 full-scale pipe strain capacity tests and are accurate within the validated variable ranges. In the current paper, enhancements of the previous model and equations are described. The enhancements include incorporation of advanced damage mechanics modeling into TSC prediction, development of a new TSC equation, expansion of variable ranges and functionality upgrades. The new model and equation are applicable over larger ranges of material properties and flaw sizes. The new FEA model is also used to establish surface flaw interaction rules for SBD. The new FEA model is validated against more than 40 full-scale non-pressurized and pressurized tests and underpins the development of the new TSC equation. The equation is validated against a total of 93 full-scale tests (FST). In addition to the enhancements, sample applications of the TSC model and equation are presented in the paper, for example, an investigation of the effects on strain capacity of Lueders strain and ductile tearing. Challenges in predicting TSC are also addressed.
机译:基于应变的设计(SBD)用于补充在地面运动可能很大的环境(例如在多年冻土和地震活跃区域中发现的那些)中运行的管道的常规允许应力设计。可靠而准确的拉伸应变能力(TSC)预测在基于应变的设计中起着至关重要的作用。正如过去6年以上的报道一样,已进行了全面的实验和数值程序来表征焊接管道的TSC,开发了能够预测TSC的有限元分析(FEA)方法和方程式,并建立了基于应变的工程关键评估(SBECA)方法。先前的FEA模型和​​TSC方程已针对约50个全尺寸管道应变能力测试进行了验证,并且在验证的变量范围内是准确的。在本文中,描述了先前模型和方程的增强。增强功能包括将先进的损伤力学模型纳入TSC预测,开发新的TSC方程,扩展可变范围和功能升级。新的模型和方程式适用于更大范围的材料性能和缺陷尺寸。新的FEA模型还用于建立SBD的表面缺陷相互作用规则。新的FEA模型已针对40多个满量程的非加压和加压测试进行了验证,并为新的TSC方程的开发奠定了基础。该方程式针对总共93个全面测试(FST)进行了验证。除了增强功能外,本文还介绍了TSC模型和方程的示例应用,例如,研究了Lueders应变和延性撕裂对应变能力的影响。还解决了预测TSC的挑战。

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