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Novel ferritic stainless steel formed by laser melting from duplex stainless steel powder with advanced mechanical properties and high ductility

机译:激光熔炼双相不锈钢粉末制成的新型铁素体不锈钢,具有先进的机械性能和高延展性

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摘要

Stainless steel bodies with relative density of 99.5% (with the theoretical density being 7.8 gr/cm~3) were manufactured by laser melting (LM) of duplex 2507SAF steel powder. The crystalline phases of starting powder were fully ferrite with only a small trace of austenite. The chemical composition was unchanged during laser melting. A unique mosaic-type structure with mosaics of 100-150 μm size was formed after LM. Recrystallized grains with 1-5 μm was formed in between the mosaic boundaries. A great number of entangled dislocation loops resembling a loops with 100-200 nm size were also formed inside each of these mosaics and also within recrystallized micron size grains at the mosaic boundary zones. Nitrogen enriched areas and nitride phase were detected in the inner microstructure of the laser melted samples. The measured tensile strength, yield strength and microhardness were 1214 MPa, 1321 MPa and 450 HV, respectively, which is superior to that of conventional ferritic, austenitic and duplex stainless steels. The Enhanced mechanical properties are due to a number of nano- and microstructure factors such as the nano-sized dislocation loops restricting dislocation movements, different crystalline grain orientation of grains within the mosaics and boundary inclusions and precipitates that inhibit slip/slide effects. Despite of high strength and hardness, the laser melted ferritic steel was very ductile according to stress-strain curves and fracture analysis.
机译:通过双相2507SAF钢粉的激光熔炼(LM)制造相对密度为99.5%(理论密度为7.8 gr / cm〜3)的不锈钢体。起始粉末的结晶相是完全铁素体,只有少量的奥氏体。在激光熔化过程中化学成分没有变化。 LM之后形成了一个独特的马赛克型结构,其马赛克尺寸为100-150μm。在镶嵌边界之间形成了1-5μm的再结晶晶粒。在每个镶嵌物中以及镶嵌边界区域的重结晶微米级晶粒内,还形成了大量类似于大小为100-200 nm的环的纠缠位错环。在激光熔化样品的内部微观结构中检测到富氮区域和氮化物相。测得的抗拉强度,屈服强度和显微硬度分别为1214 MPa,1321 MPa和450 HV,优于常规的铁素体,奥氏体和双相不锈钢。增强的机械性能归因于许多纳米和微观结构因素,例如限制位错运动的纳米级位错环,镶嵌物中晶粒的不同晶粒取向,边界夹杂物和沉淀物,它们抑制了滑移/滑动效应。尽管具有很高的强度和硬度,但根据应力-应变曲线和断裂分析,激光熔融铁素体钢却具有很高的延展性。

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  • 来源
    《Materials Science and Engineering》 |2016年第17期|59-65|共7页
  • 作者单位

    Department of Materials and Environmental Chemistry, Arrhenius Laboratory, Stockholm University, S-106 91 Stockholm, Sweden;

    Institute of Materials Research of the Slovak Academy of Sciences, Watsonova 47, Kosice, Slovakia;

    Faculty of Materials Science and Technology in Trnava, Slovak University of Technology in Bratislava, 916 24 Trnava, Slovak Republic;

    Department of Materials and Environmental Chemistry, Arrhenius Laboratory, Stockholm University, S-106 91 Stockholm, Sweden;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Laser melting; Ferritic steel; Dislocation loops; Nitride precipitation; Mechanical properties;

    机译:激光熔化;铁素体钢错位循环;氮化物沉淀;机械性能;

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