Investigation of microstructure, and mechanical properties of dissimilar high and ultra-high steel welded joints: application for extreme climate conditions

Dr. Francois Njock Bayock, P. Mejouyo, M. S. Bisong, P. Kah
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Abstract

The paper focuses on the technical challenges of producing high-quality welds in modern extreme climate conditions structures, as welds are typically the weakest part of welded structures. Welding is particularly difficult with high-strength and ultra-high-strength steels (HSS-UHSS), which are used in structures to reduce weight. The microstructural compositions and mechanical properties of dissimilar high-strength and ultra-high-strength steels were investigated in this study, which was performed with three different heat inputs (0.8, 1.2, and 1.8 kJ/mm). There was a 2.3Cr, 0.4Si, and 2.8Mn increase on the FGHAZ microstructure of the S960QC side, confirming the temperature increase in that zone. Microhardness results show softening (160 HV5) in the E500 side's fine grain heat-affected zone (FGHAZ). Bending test results show that when the maximum force applied was 4000N, the fracture angle was close to 149°, and that the fracture zone was oriented exclusively in the FGHAZ, which had the higher softening zone. Tensile results show the fracture zone, which was oriented in the E500 side's FGHAZ. It was suggested that a heat input of 1.2 kJ/mm be applied to the weld dissimilar joint of TMCP E500-S960QC, which will be beneficial for extreme climate conditions.  
异种高、超高钢焊接接头的显微组织和力学性能研究:在极端气候条件下的应用
本文重点介绍了在现代极端气候条件下生产高质量焊缝的技术挑战,因为焊缝通常是焊接结构中最薄弱的部分。焊接高强度和超高强度钢(HSS-UHSS)尤其困难,这些钢用于减轻结构重量。在三种不同的热输入(0.8、1.2和1.8 kJ/mm)条件下,研究了不同高强和超高强钢的显微组织组成和力学性能。S960QC侧的FGHAZ组织增加了2.3Cr, 0.4Si和2.8Mn,证实了该区域的温度升高。显微硬度结果表明,E500侧细晶热影响区(FGHAZ)出现软化(160 HV5)。弯曲试验结果表明,当最大施加力为4000N时,断裂角度接近149°,断口区完全定向在FGHAZ内,软化区较高。拉伸结果表明,断裂带主要在E500侧的FGHAZ方向。建议对TMCP E500-S960QC焊缝异种接头施加1.2 kJ/mm的热输入,有利于适应极端气候条件。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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