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Determination of the Root Causes for Cracking in a Large-Size Cast Ingot of AISI 4317 Steel Using Microstructural Analysis

机译:使用微观结构分析,测定AISI 4317钢的大尺寸铸锭中裂解的根本原因

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摘要

The objective of the present work is to study the root causes for the cracking and material detachment from the external surface of a 10 metric tons high-strength low-alloy steel ingot after solidification and annealing processes. Failure analysis investigations were conducted on different samples from the cracked areas as well as from non-cracked ones. A combination of optical and electron microscopies, x-ray diffraction, and microhardness techniques were used to study and analyze the nature, morphology, and composition of the different microstructural components in the cracked regions. Thermodynamic software, Thermo-Calc_(?)was used to corroborate and interpret the experimental findings with the existing theories. The results indicated a strong intergranular character of the cracks accompanied by the presence of second-phase particles at prior austenite grain boundaries. Segregation of chromium and manganese was demonstrated through local chemical analysis of the grain boundaries. It was concluded that a rapid cooling rate combined with the weakening of grain boundaries was at the origin of crack initiation.
机译:本作工作的目的是研究凝固和退火工艺后,研究了来自10公吨高强度低合金钢锭的外表面的裂化和材料脱落的根本原因。失效分析调查是在裂纹区域的不同样品以及非裂纹的样本上进行。光学和电子显微镜,X射线衍射和显微硬度技术的组合用于研究和分析裂纹区域中不同微观结构部件的性质,形态和组成。热力学软件,热钙_(?)用于用现有理论证实和解释实验结果。结果表明,在先前奥氏体晶状体边界处的第二相颗粒存在伴随的裂缝的强晶状体特征。通过对晶界的局部化学分析证明了铬和锰的偏析。得出结论,快速冷却速率与晶界弱化的结合在于裂纹启动的起源。

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