EN 10025-6 S550 QT钢可焊性的研究

K. Prakash, R. Kumar, M. Venkatesan, P. Kumar
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摘要

裂缝出现在90mm厚的EN 10025-6 S550 QT钢板上,这些钢板组装成一个箱体单元。装配后,在预热或轧根时,沿拉长晶粒纵向产生表面裂纹。进行了根本原因分析,以调查失败的原因,以及如何在采购过程中指定“交付材料条件”。进行了目测、化学成分、夹杂物等级、显微组织、染料渗透、硬度等试验。研究表明,失效裂纹可能是由于锡、砷、磷、锑等杂质在晶界析出而产生回火脆化,在温度作用下由韧性向脆性转变。观察到,根据钢中Ti和N的浓度,几微米大小的粗态和立方态TiN颗粒是解理裂纹萌生的潜在位点。此外,在炼钢过程中,如果硫控制不当,那么在凝固过程中也会形成较大的MnS夹杂物。软MnS夹杂物在随后的热轧过程中拉长,降低了延展性和冲击韧性。因此,在钢材采购过程中,明确J因子值和夹杂率是十分必要的。
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Study on Weldability of EN 10025-6 S550 QT Steel
Cracks developed in the 90 mm thick EN 10025-6 S550 QT steel plates assembled to form a box unit. After assembly the surface cracks generated longitudinally along the elongated grains while preheating or performing root run. Root cause analysis was conducted to investigate the reason for the failure and also how to specify the “conditions of materials on delivery” during procurement is generated. Various tests such as visual test, chemical composition, inclusion rating, microstructure, dye penetrant test and hardness tests were conducted. The investigation revealed that the failure cracks could be due to temper embrittlement due to the segregations of impurities such as tin, arsenic, phosphorus and antimony, etc. in the grain boundaries and resulted in ductile to brittle transformation when exposed in the temperature. It is observed that, depends on the concentration of Ti and N in steel, coarse and cuboidal TiN particles of several micrometers in size act as potential sites for cleavage crack initiation. Furthermore, during the steel making process if sulfur is not properly controlled, then large MnS inclusions can also form during solidification. Soft MnS inclusions elongate during the subsequent hot rolling process, which deteriorate ductility and impact toughness. Hence, it is essential to specify the J factor value and inclusion rate during the procurement of steel.
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