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Study on microstructure and mechanical characteristics of low-carbon steel and ferritic stainless steel joints

机译:低碳钢和铁素体不锈钢接头的组织和力学性能研究

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In this work, examinations on the microstructure and mechanical properties of plain carbon steel and AISI 430 ferritic stainless steel dissimilar welds are carried out. Welding is conducted in both autogenous and using ER309L austenitic filler rod conditions through gas tungsten arc welding process. The results indicate that fully-ferritic and duplex ferritic-martensitic microstructures are formed for autogenous and filler-added welds, respectively. Carbide precipitation and formation of martensite at ferrite grain boundaries (intergranular martensite) as well as grain growth occur in the heat affected zone (HAZ) of AISI 430 steel. It is found that weld heat input can strongly affect grain growth phenomenon along with the amount and the composition of carbides and intergranular martensite. Acquired mechanical characteristics of weld in the case of using filler metal are significantly higher than those of autogenous one. Accordingly, ultimate tensile strength (UTS), hardness, and absorbed energy during tensile test of weld metal are increased from 662 MPa to 910 MPa, 140 Hv to 385 Hv, and 53.6 J m~(-3) to 79J m~(-3), respectively by filler metal addition. From fracture surfaces, predominantly ductile fracture is observed in the specimen welded with filler metal while mainly cleavage fracture occurs in the autogenous weld metal.
机译:在这项工作中,对普通碳素钢和AISI 430铁素体不锈钢异种焊缝的组织和力学性能进行了检查。通过气体钨极电弧焊工艺在自生和使用ER309L奥氏体填充焊条条件下进行焊接。结果表明,分别为自生焊缝和填充焊缝形成了全铁素体和双相铁素体-马氏体组织。在AISI 430钢的热影响区(HAZ)中发生铁素体晶粒边界(晶间马氏体)的碳化物沉淀和马氏体形成,以及晶粒长大。研究发现,焊接热输入与碳化物和晶间马氏体的数量和组成一起会严重影响晶粒长大现象。在使用填充金属的情况下,获得的焊缝机械性能明显高于自生金属。因此,在焊接金属拉伸试验中,极限抗拉强度(UTS),硬度和吸收能从662 MPa增加到910 MPa,从140 Hv增加到385 Hv,从53.6 J m〜(-3)增加到79J m〜(- 3)分别通过填充金属添加。从断裂表面,在用填充金属焊接的试样中观察到主要是韧性断裂,而在自生焊接金属中主要发生劈裂断裂。

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