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Microstructure and mechanical properties of dissimilar friction stir welded type 304 austenitic stainless steel to Q235 low carbon steel

机译:不同摩擦搅拌型304奥氏体不锈钢的微观结构和力学性能至Q235低碳钢

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In this work, friction stir welding (FSW) was used to weld dissimilar metals (Type 304 stainless steel (SS304) and Q235 low carbon steel). The microstructure, interfacial characteristics, residual stress distribution and mechanical properties of the joint were investigated. The results show that FSW results in grain refinement in the stir zone (SZ) and thermal-mechanical affected zone (TMAZ) in SS304 side. Discontinuous dynamic re crystallization and twinning-induced dynamic recrystallization are the main grain refinement mechanisms. Dynamic recovery occurs in the heat-affected zone (HAZ). On the Q235 steel side, the acicular ferrite and pearlite are generated in the SZ, which is due to its peak temperature of up to Ac-3. Additionally, the amount of acicular ferrite decreases in the TMAZ. Continuous and discontinuous dynamic recrystallization is the main recrystallization mechanism in the two regions. The interfacial bonding mechanism of FSW joint consists of both mechanical and metallurgical bonding. In addition, the difference in expansion coefficient and microstructure between the two steels results in the formation of residual compressive stress in the SZ. Grain refinement and acicular ferrite are responsible for the microhardness distribution in the whole joint. The tensile strength of FSW joint is 493 MPa, which is more than that of Q235 steel by around 4%. However, the elongation is 17%, which shows a decrease of around 50%. Furthermore, the fracture surface shows ductile fracture with dimples.
机译:在这项工作中,摩擦搅拌焊接(FSW)用于焊接异种金属(型式304不锈钢(SS304)和Q235低碳钢)。研究了关节的微观结构,界面特性,残余应力分布和机械性能。结果表明,FSW在SS304侧的搅拌区(SZ)和热机械受影响区(TMAZ)中的晶粒细化。不连续的动态再结晶和孪生诱导的动态再结晶是主要的晶粒细化机制。动态恢复发生在热影响区域(HAZ)中。在Q235钢侧,在SZ中产生针状铁氧体和珠光体,这是由于其高达AC-3的峰值温度。另外,针状铁氧体的量在TMAZ中减少。连续和不连续的动态再结晶是两个区域的主要再结晶机制。 FSW关节的界面键合机理包括机械和冶金键合。另外,两个钢的膨胀系数和微观结构的差异导致SZ中的残余压缩应力的形成。晶粒细化和针状铁氧体负责整个关节的显微硬度分布。 FSW接头的拉伸强度为493MPa,其大于Q235钢的493MPa,约为4%。然而,伸长率为17%,表明减少约50%。此外,断裂表面显示延性骨折,凹槽。

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