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Understanding mechanical property anisotropy in high strength niobium-microalloyed linepipe steels

机译:了解高强度铌微合金管线钢的力学性能各向异性

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摘要

Thermo-mechanical processing of linepipe steels may result in anisotropy in mechanical properties, notably, yield strength and toughness, depending on the chemical composition and microstructure. These relationships are exceptionally important in spiral-welded pipe. Given the current interest in the development of high strength linepipe steels, we have examined in detail the mechanical property anisotropy phenomena using a combination of electron microscopy and crystallographic texture analysis in API L485 (X70) and API L555 (X80) steels. In this presentation, we describe the results of a study that has enhanced our understanding of the relationship between the microstructure and texture with anisotropy in mechanical properties. The microstructure of both X70 and X80 microalloyed linepipe steels as imaged via electron microscopy was similar and did not exhibit any significant anisotropy in the plane of the sheet. The microstructural constituents, polygonal ferrite and acicular ferrite (bainitic ferrite: ~5-10% in X70 and ~ 15-20% in X80) were also distributed uniformly throughout the volume of the specimens (0°, 45°, and 90° with respect to the rolling direction). The anisotropy in yield strength and Charpy impact toughness of X70-Nb and X80-Nb-Mo microalloyed linepipe steels was examined by using orientation distribution function analysis. The texture fibers of X70 and X80 microalloyed steels were similar but with significant differences in the intensity. Deformation textures mainly consisted of α-fiber (<110>//RD), y-fiber(<111>//RD), and s-fiber (<110>//TD). The major components of texture observed were {112}<110>, {332}<113>, {110)<001>, and {001}<110> orientations. The observations suggested that the RD fiber centered at (112}<110>, {113}<110>, and {223}<110> was responsible for the anisotropy in yield strength. The intensity of these texture components was higher in both X70 and X80 microalloyed steels in the rolling directions (RD) as compared to the 45° to the RD.
机译:管线钢的热机械加工可能会导致机械性能的各向异性,尤其是屈服强度和韧性,这取决于化学成分和微观结构。这些关系在螺旋焊管中特别重要。鉴于当前对开发高强度管线钢的兴趣,我们已通过结合使用电子显微镜和API L485(X70)和API L555(X80)的晶体织构分析详细研究了力学性能各向异性现象。在此演示文稿中,我们描述了一项研究的结果,该研究增强了我们对微观结构和织构与机械性能各向异性之间关系的理解。通过电子显微镜成像,X70和X80微合金管线管钢的微观结构相似,并且在板材平面上没有任何明显的各向异性。显微组织成分,多边形铁素体和针状铁素体(贝氏体铁素体:X70约为5-10%,X80约为15-20%)也均匀分布在整个试样体积中(0°,45°和90°)。相对于滚动方向)。通过取向分布函数分析,研究了X70-Nb和X80-Nb-Mo微合金管线钢的屈服强度和夏比冲击韧性的各向异性。 X70和X80微合金钢的织构纤维相似,但强度差异很大。变形织构主要由α-纤维(<110> // RD),y-纤维(<111> // RD)和s-纤维(<110> // TD)组成。观察到的织构的主要成分是{112} <110>,{332} <113>,{110)<001>和{001} <110>取向。观察结果表明,以(112} <110>,{113} <110>和{223} <110>为中心的RD纤维是屈服强度各向异性的原因,这两个X70上这些织构成分的强度都较高。 X80和X80微合金钢在轧制方向(RD)上与RD呈45°相比较。

著录项

  • 来源
    《Materials Science and Engineering》 |2012年第30期|p.194-210|共17页
  • 作者单位

    Center for Structural and Functional Materials, University of Louisiana at Lafayette, LA 70503, USA;

    Center for Structural and Functional Materials, University of Louisiana at Lafayette, LA 70503, USA;

    Center for Structural and Functional Materials, University of Louisiana at Lafayette, LA 70503, USA;

    ArcelorMittal, Global Research and Development Center, 3001 E. Columbus Drive, East Chicago, IN 46312, USA;

    ArcelorMittal, Global Research and Development Center, 3001 E. Columbus Drive, East Chicago, IN 46312, USA;

    ArcelorMittal, Global Research and Development Center, 3001 E. Columbus Drive, East Chicago, IN 46312, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    linepipe steels; niobium-microalloyed; microstructure; texture; anisotropy;

    机译:管线钢;铌微合金化;微观结构质地;各向异性;

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