【24h】

Fracture Mechanics of Gray Cast Iron

机译:灰铸铁的断裂力学

获取原文

摘要

The fracture mechanism of gray cast iron was investigated on tension loaded samples produced under different conditions. The parameters studied included the graphite morphology, the carbon content, the inoculation and the cooling condition. The observations made reveal the role of the microstructure on crack propagation. The cracks were found to always propagate parallel with the graphite flakes. The interaction between the metallic matrix precipitated as primary austenite and graphite has been interpreted by a simplified model of the austenite reinforced eutectic cell.The geometrical transcription gave a standard crack component configuration with known mathematical solution. The microstructure observed in the experiments has been analysed by means of a novel interpretation. The fictitious stress intensity at yield and the fictitious maximum stress intensity at failure are strongly related to the relative shape of the eutectic cell and the fraction primary austenite. A different slope is observed for the material cooled at high rate when the precipitation of primary carbide reduces the stress intensity. The observed relations indicate that the tensile strength of the grey cast iron is the result of the collaboration between the toughness of the metallic matrix precipitated as primary austenite and the brittleness of the graphite phase. The shape and distribution of the primary austenite and graphite can be influenced by chemical composition, by inoculation or by the cooling condition, but they will maintain equilibrium with respect to the stress intensity.
机译:研究了灰铸铁在不同条件下产生的受拉试样的断裂机理。研究的参数包括石墨的形态,碳含量,接种量和冷却条件。观察结果揭示了微观结构在裂纹扩展中的作用。发现裂纹总是与石墨薄片平行扩展。以奥氏体增强的共晶晶胞的简化模型解释了以初生奥氏体形式析出的金属基体与石墨之间的相互作用。 几何转录给出具有已知数学解的标准裂缝组分构型。实验中观察到的微观结构已经通过一种新颖的解释进行了分析。屈服时的虚拟应力强度和破坏时的最大虚拟应力强度与共晶细胞和分数奥氏体的相对形状密切相关。当初级碳化物的沉淀降低应力强度时,对于高速冷却的材料观察到不同的斜率。所观察到的关系表明,灰口铸铁的拉伸强度是作为初生奥氏体析出的金属基体的韧性与石墨相的脆性之间协同作用的结果。奥氏体和石墨的形状和分布会受到化学成分,孕育或冷却条件的影响,但它们将在应力强度方面保持平衡。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号