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首页> 外文期刊>Journal of Materials Engineering and Performance >Microstructure and Tensile Properties of the Fe-32%Ni-4%Co Alloy During Cryorolling and Subsequent Annealing
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Microstructure and Tensile Properties of the Fe-32%Ni-4%Co Alloy During Cryorolling and Subsequent Annealing

机译:低温和随后的退火期间Fe-32%Ni-4%Co合金的组织和拉伸性能

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摘要

The Fe-32%Ni-4%Co alloy was cryorolled to produce thickness reductions of 10, 40, 60 and 90%; then, the strips with a final thickness of 0.52mm were annealed at 893, 923 and 943K for different soaking times. The x-ray diffraction measurements indicated that both thermally induced -martensite (-M) and deformation-induced -M were present in the tested alloy. The thermally induced -M was mainly lath-shaped, while the morphology of the deformation-induced -M gradually changed from lath-shaped to irregular-shaped according to transmission electron microscopy observations. After the 90% reduction due to cryorolling, the total volume fraction of -M reached 75.6%, and the average ultimate tensile strength (UTSav.) was significantly improved from 430.3 to 1306.8MPa. Upon subsequent annealing at 923K for 5min, the tested alloy mainly consisted of a large number of fine grains and a few coarse grains (CGs). In addition, several deformed structures were also observed. As the annealing time increased to 10 and 30min, the fraction of CGs increased, and a bimodal grain size distribution was obtained, while the deformed structures were still present. The temperature of the reverse phase transformation of -M was lower than the recrystallization temperature, which may be the main reason for the bimodal grain distribution. With this bimodal grain structure, the alloy exhibited a combination tensile strength of 543.3MPa and an average elongation of 34.1%.
机译:Fe-32%Ni-4%CO合金被解冻以产生10,40,60和90%的厚度减少;然后,在893,923和943K中退火具有最终厚度为0.52mm的条带,用于不同的浸泡时间。 X射线衍射测量表明,在测试合金中存在热诱导的 - 氨矿石(-M)和变形诱导的-M。热诱导-M主要是Lath形的,而变形诱导的-M的形态逐渐从透射电子显微镜观察从拉状物质变为不规则形状。在低温引起的90%降低之后,-M的总体积分数达到75.6%,并且平均最终拉伸强度(UTSAV)从430.3至1306.8MPa显着提高。在随后在923K进行5分钟后,测试合金主要由大量细粒和少量粗粒(CGS)组成。此外,还观察到几种变形结构。随着退火时间增加到10和30分钟,CGs的级分增加,并且获得了双峰粒度分布,而仍然存在变形的结构。 -M的反相变化的温度低于再结晶温度,这可能是双峰晶粒分布的主要原因。通过这种双峰晶粒结构,合金表现出543.3MPa的组合拉伸强度和平均伸长率为34.1%。

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