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Deformation Behavior and Microstructural Evolution of Reeled Pipeline Steels during Cyclic Plastic Deformation

机译:循环塑性变形期间卷绕管道钢的变形行为和微观结构演化

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摘要

API X60 steel used for reeled pipeline was subjected to different amounts of cyclic plastic deformation (CPD) by multiple tension-compression tests in order to study the deformation behavior and microstructural evolution during each stage of reel-lay installation process. It was found that the yield strength was significantly reduced by about 110 MPa during the first CPD cycle due to the Bauschinger effect. However, the yield strength was little affected by the subsequent CPD cycles, and the yield strength difference between tension and compression tended to reach a steady-state value of 23 MPa after multiple CPD cycles. With the increase in CPD cycles, the proportion of low-angle grain boundaries declined from 50.9 to 35.7%, and the CPD contributed to the formation of immovable dislocation walls and cells due to the dislocation rearrangement, causing the stable yield strength. The CPD process with strain level of 3% had no prominent effect on the tensile strength and elongation, because the change in microstructures was not enough to alter the work hardening completely after multiple CPD cycles.
机译:用于卷绕管道的API X60钢通过多个张力压缩试验对卷绕管道进行不同的循环塑性变形(CPD),以研究卷轴安装过程的每个阶段的变形行为和微观结构演变。发现由于Bauschinger效应,在第一个CPD循环期间屈服强度明显减少了约110MPa。然而,屈服强度受到随后的CPD循环的影响很小,并且在多个CPD循环后张力和压缩之间的屈服强度差异趋于达到23MPa的稳态值。随着CPD循环的增加,低角度晶界的比例从50.9%下降到35.7%,并且CPD由于脱位重排而导致不动位错壁和细胞的形成,从而导致稳定的产量强度。应变水平为3%的CPD过程对拉伸强度和伸长率没有突出的影响,因为微观结构的变化不足以在多个CPD循环后完全改变硬化的工作。

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