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Metallurgical Design and Performance of High-Frequency Electric Resistance Welded Linepipe With High-Quality Weld Seam Suitable for Extra-Low-Temperature Services

机译:适用于超低温工况的高品质焊缝高频电阻焊管道的冶金设计和性能

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摘要

To clarify the effect of inclusions on the Charpy impact properties, the 2 mm V-notched Charpy properties of X60-X80-grades steel were numerically simulated using the finite element method code abaqus. The yield strength and the tensile strength of the steel were 562 MPa and 644 MPa, respectively. The striker's velocity and the temperature dependency of the stress-strain curve were taken into account. To estimate the effect of nonme-tallic inclusions, a 200 μm long virtual inclusion with a 1 μm edge radius was situated at the maximum point of the stress triaxiality. Four types of microcrack initiation were determined: (a) ductile void generation in the matrix, (b) cleavage crack generation in the matrix, (c) void generation by inclusion fracture, and (d) void generation by matrix-inclusion interface debonding. Without inclusions, a ductile microvoid was generated when the striker stroke was 3.3 mm, independent of the temperature. With inclusions, an inclusion fracture occurred when the striker stroke was 0.6 mm at room temperature. The striker stroke decreased as the temperature decreased. Based on the above numerical estimation results, high-frequency electric resistance welded (HFW) linepipe with high-quality weld seam MightySeam~® has been developed. Controlling the morphology and distribution of oxides generated during the welding process by means of temperature and deformation distribution control is the key factor for improving the low-temperature toughness. The Charpy transition temperature of the developed HFW pipe was much lower than -45℃. Based on the low-temperature hydrostatic burst test with a notched weld seam at -20 ℃, the MightySeam~® weld provides a fracture performance that is the same as UOE double submerged arc welded pipe. The pipe has been used in actual, highly demanding, and severe environments.
机译:为了阐明夹杂物对夏比冲击性能的影响,使用有限元方法代码abaqus对X60-X80级钢的2 mm V型缺口夏比性能进行了数值模拟。钢的屈服强度和抗拉强度分别为562 MPa和644 MPa。考虑了撞针的速度和应力-应变曲线的温度依赖性。为了估计非金属夹杂物的影响,将200μm长的虚拟夹杂物(边缘半径为1μm)放置在应力三轴性的最大点。确定了四种类型的微裂纹引发:(a)基质中产生延性孔隙,(b)基质中存在裂解裂缝,(c)夹杂物断裂产生的空隙,以及(d)基质-夹杂物界面脱粘产生的空隙。如果没有夹杂物,则撞针行程为3.3 mm时,与温度无关,会产生韧性的微孔。对于夹杂物,在室温下撞针行程为0.6 mm时发生夹杂物破裂。随着温度降低,撞针行程减小。基于以上数值估算结果,已开发出具有优质焊缝MightySeam〜®的高频电阻焊(HFW)管道。通过温度和变形分布控制来控制焊接过程中产生的氧化物的形态和分布是提高低温韧性的关键因素。研制的HFW管的夏比转变温度远低于-45℃。 MightySeam〜®焊缝基于带有切口焊缝且在-20℃下进行的低温静液压爆破试验,其断裂性能与UOE双埋弧焊管相同。该管道已在实际,高要求和严酷的环境中使用。

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  • 来源
    《Journal of offshore mechanics and arctic engineering》 |2015年第3期|031401.1-031401.11|共11页
  • 作者单位

    Steel Research Laboratory, JFE Steel Corporation, 1-1, Minamiwatarida-cho, Kawasaki-ku, Kawasaki 210-0855, Japan;

    Steel Research Laboratory, JFE Steel Corporation, 1, Kawasaki-cho 1-chome, Handa, Aichi 475-8611, Japan;

    Steel Research Laboratory, JFE Steel Corporation, 1, Kawasaki-cho 1-chome, Handa, Aichi 475-8611, Japan;

    Steel Research Laboratory, JFE Steel Corporation, 1, Kawasaki-cho 1-chome, Handa, Aichi 475-8611 Japan,JFE Techno-Research Corporation, 1-1, Minamiwatarida-cho, Kawasaki-ku, Kawasaki 210-0855, Japan;

    Steel Research Laboratory, JFE Steel Corporation, 1 Kawasaki-cho, Chuo-ku, Chiba 260-0835, Japan;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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