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Effects of microstructure changes on the superplasticity of 2205 duplex stainless steel

机译:显微组织变化对2205双相不锈钢超塑性的影响

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The high temperature deformation behavior of 2205 duplex stainless steel under different conditions had been studied by tensile tests. The whole tensile test was conducted at a constant temperature 950 ℃ with an initial strain rate 1.5 × 10~(-3)/s. Some tests were interrupted purposely and then the samples were quenched using water. Elongations of the fractured specimens were calculated. Microstructure changes just before and during the deformation were observed. Phase ratio of σ precipitate was analyzed. The results showed that the superplasticity of 2205 duplex stainless steel was directly affected by the micro-structure before the deformation. The recrystallization phenomenon was distinct along with the homogenizing time and the grains became equiaxed and stable. Meanwhile, the quantity of σ phase increased when prolonged the homogenizing time. After homogenized for 7 min before the tensile test, the σ phase ratio was about 4.8% and the grain size was about 998 nm, the maximum elongation value 1260% was obtained. During the deformation progress, dynamic recrystallization was observed and quantity of σ phase increased with the increasing of deformation strain. The σ phase restricted the grain growth and kept the equiaxed duplex structure stable with a grain size of about 1 μm.
机译:通过拉伸试验研究了2205双相不锈钢在不同条件下的高温变形行为。整个拉伸试验在950℃的恒温下进行,初始应变速率为1.5×10〜(-3)/ s。故意中断一些测试,然后用水淬灭样品。计算断裂样品的伸长率。观察到在变形之前和变形期间的微观结构变化。分析了σ沉淀物的相比。结果表明,2205双相不锈钢的超塑性直接受到变形前组织的影响。再结晶现象随均化时间的不同而明显,晶粒变得等轴且稳定。同时,当延长均质时间时,σ相的数量增加。在拉伸试验之前均质化7分钟后,σ相比为约4.8%且晶粒尺寸为约998nm,获得最大伸长率值1260%。在变形过程中,观察到动态再结晶,并且随着变形应变的增加,σ相的数量也增加。 σ相限制了晶粒的生长,并保持等轴双相组织的稳定,晶粒尺寸约为1μm。

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  • 来源
    《Materials & design》 |2014年第3期|146-151|共6页
  • 作者单位

    School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 10083, PR China;

    School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 10083, PR China;

    School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 10083, PR China;

    School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 10083, PR China;

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