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Microstructure characterization and its relationship with impact toughness of C–Mn and high strength low alloy steel weld metals – a review

机译:C-Mn和高强度低合金钢焊接金属冲击韧性的微观结构特征及其关系 - 评论

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Prediction of impact toughness based on the microstructural characteristics of steel weld metals is complicated due to the innumerous parameters involved. The common practice that associates this property with the microstructure of the last bead of multipass weldments has been proven to be unsatisfactory, because the amount of acicular ferrite, the most desirable constituent, may not always be the main contributor to toughness. Parameters such as the recrystallized fraction, the presence of micro-phases and inclusions may also have a relevant role. Thus, to consider the influence of all these parameters, the method proposed by the International Institute of Welding (IIW) is not sufficiently comprehensive and so complementary techniques are necessary. This situation is more relevant for high strength steel weld metals, where very refined microstructures may not be adequately resolved, resulting in misidentification of the microstructure. The use of scanning electron microscopy as an auxiliary technique to optical microscopy has been successfully used for many decades to study C–Mn and low alloy weld metals, mainly when refined microstructures are to be assessed. Recently, in addition to the previously mentioned techniques, Electron Back Scattering Diffraction (EBSD) has also been used to enable a more effective analytical procedure. This technique, which provides valuable information about grain boundaries, is advantageous for refined microstructures to confirm constituents such as acicular ferrite, bainite, and martensite. This work proposes a contribution to the microstructural characterization of C–Mn and high strength steel weld metals based on the analysis carried out by optical microscopy, scanning electron microscopy and EBSD techniques, involving the influence of recrystallization in multipass welds, microstructural constituents, microphases, and inclusions. The microstructure/toughness relationship analysis of some experimental results obtained over the last decades for weld metals with ultimate tensile strength varying from 400 to 1000?MPa was done using the methodology proposed in this work to check its effectiveness and to explain the impact toughness behavior.
机译:由于所涉及的内外参数,基于钢焊接金属的微观结构特性的冲击韧性预测。将该属性与多脂焊焊珠的微观结构联系起来的常见做法已被证明是不令人满意的,因为针状铁氧体的数量是最理想的成分,可能并不总是成为韧性的主要贡献者。诸如重结晶分数的参数,微相存在和夹杂物的存在也可能具有相关的作用。因此,要考虑所有这些参数的影响,国际焊接研究所(IIW)提出的方法不够全面,因此需要互补技术。这种情况与高强度钢焊接金属更相关,在那里可能无法充分解决非常精细的微观结构,导致微观结构的误识别。使用扫描电子显微镜作为光学显微镜的辅助技术已经成功地使用了数十年来研究C-Mn和低合金焊接金属,主要是当要评估精细的微观结构时。最近,除了前面提到的技术之外,还用于实现更有效的分析程序的电子背散射衍射(EBSD)。这种技术提供有关晶粒边界的有价值信息的技术是有利的,用于确认针状铁氧体,贝氏体和马氏体等成分。该工作提出了基于光学显微镜,扫描电子显微镜和EBSD技术进行的分析对C-Mn和高强度钢焊料金属的微观结构表征的贡献,涉及重结晶在多脂焊缝,微结构成分,缩放中的影响和夹杂物。在过去几十年中获得的一些实验结果的微观结构/韧性关系分析,焊接金属具有来自400至1000的最终拉伸强度的焊料金属。使用本工作中提出的方法来检查其有效性并解释抗冲韧性行为。

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