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Evaluation of Void Nucleation and Development during Plastic Deformation of Dual-Phase Steel DP600

机译:双相钢DP600塑性变形过程中空洞形核发展的评估

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This paper presents investigations on the characterization of ductile damage and identification of the porosity-related materialmodel parameters in a dual-phase steel DP600. As a modeling reference for the damage evolution, a variant from the Gurson model family is taken. The micromechanical investigations related to nucleation and growth of voids have been carried out. In order to show the void-volume evolution during the deformation, post-mortem scanning electron microscope (SEM) analysis of a notched tensile test is used. Using the ion beamslope cutting methodology to prepare the specimens for SEManalysis, the microstructure can be observed in 2D including the voids. In thisway, for the dual-phase steel, characteristic damage behavior upon deformation due to interaction of martensite and ferrite can be investigated. The minimum void size (areal) that can be measured is 0.05 mu m(2). This resolution of the measurements provides the detection of the newly nucleated voids. For the related material parameters, void-size relevant criterion is applied to determine the newly nucleated voids at a certain plastic strain.
机译:本文介绍了双相钢DP600中延性损伤的表征和与孔隙率相关的材料模型参数的鉴定。作为损伤演化的建模参考,采用了Gurson模型系列的变体。已经进行了与空洞的形核和生长有关的微机械研究。为了显示变形过程中的空隙体积演变,使用了凹口拉伸试验的事后扫描电子显微镜(SEM)分析。使用离子束倾斜切割方法来准备用于SEM分析的样品,可以在2D中观察到包括空隙在内的微观结构。这样,对于双相钢,可以研究由于马氏体和铁素体的相互作用而引起的变形时的特性破坏行为。可以测量的最小空隙尺寸(面积)为0.05μm(2)。测量的这种分辨率提供了对新成核空隙的检测。对于相关的材料参数,采用空隙尺寸相关标准来确定在一定塑性应变下新成核的空隙。

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