首页> 外文期刊>ISIJ international >Quantification of Large Deformation with Punching in Dual Phase Steel and Change of its Microstructure –Part II: Local Strain Mapping of Dual Phase Steel by a Combination Technique of Electron Backscatter Diffraction and Digital Image Correlation Methods
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Quantification of Large Deformation with Punching in Dual Phase Steel and Change of its Microstructure –Part II: Local Strain Mapping of Dual Phase Steel by a Combination Technique of Electron Backscatter Diffraction and Digital Image Correlation Methods

机译:双相钢冲孔大变形的量化及其微观结构的变化–第二部分:电子背散射衍射和数字图像相关技术相结合的双相钢局部应变图

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To evaluate heterogeneous strain distribution developed by pre-deformations in dual phase (DP) steel accurately, a combinational technique of Electron Backscatter Diffraction (EBSD) and Digital Image Correlation (DIC) methods was newly introduced in this study. A good correlation is established between kernel average misorientation calculated by EBSD and local equivalent strain measured by DIC in ferrite matrix of DP steels regardless of the difference in deformation process, which means that an EBSD orientation map can be easily converted into an applicative strain map by employing the individual correlation formula. This new technique reveals that very large strain region is locally formed within dozens of micrometer from the punched edge in a punched DP steel. On the other hand, hard martensite grains dispersed in DP steel remarkably promote the heterogeneity of strain distribution in ferrite matrix. As a result, the large strain region is also developed in the form of bands in a cold-rolled DP steel by only 60% thickness reduction at least, as if it is affected by the distribution and morphology of martensite grains. In addition, the local strain mapping demonstrates that the equivalent strain of the large strain band in cold-rolled material is comparable to that of the heavily deformed edge in punched one. The very large strain band in ferrite matrix is characterized by ultrafine grained structure, which leads to the possibility for the losing ductility in ferrite matrix and the martensite cracking.
机译:为了准确评估双相(DP)钢中预变形产生的异质应变分布,本研究新引入了一种结合了电子背散射衍射(EBSD)和数字图像相关(DIC)方法的技术。 EBSD计算出的核平均取向差与DIC在DP钢的铁素体基体中测得的局部当量应变之间建立了良好的相关性,而与变形过程的差异无关,这意味着EBSD取向图可以很容易地转换为适用的应变图采用个体相关公式。这项新技术揭示了在冲裁DP钢中,在距冲裁边缘数十微米范围内局部形成了很大的应变区域。另一方面,分散在DP钢中的硬质马氏体晶粒显着促进了铁素体基体中应变分布的异质性。结果,在冷轧DP钢中,至少以60%的厚度减小,也以带状形式出现了较大的应变区域,好像它受到马氏体晶粒的分布和形态的影响一样。另外,局部应变图表明,冷轧材料中的大应变带的等效应变与冲压件中的严重变形边缘的等效应变相当。铁素体基体中非常大的应变带具有超细晶粒结构,这导致铁素体基体失去延展性和马氏体开裂的可能性。

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