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首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >Effect of Aging and Deformation on the Microstructure and Properties of Fe-Ni-Ti Maraging Steel
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Effect of Aging and Deformation on the Microstructure and Properties of Fe-Ni-Ti Maraging Steel

机译:时效和形变对Fe-Ni-Ti马氏体时效钢组织和性能的影响

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摘要

The age-hardening behavior of Fe-25.3Ni- 1.7 Ti (wt pct) alloy both in undeformed specimens and in specimens cold deformed by 10 or 20 pct prior to aging was studied. The microstructural changes during aging were observed using transmission electron microscopy (TEM) and atom probe analysis and there were related to the mechanical properties as measured by microhardness and shear punch testing. An excellent combination of hardness, strength, and ductility was achieved after only 5 seconds aging at 550 deg C. We propose that this rapid strengthening is due to a dislocation friction effect arising from the formation of a fine dispersion of Ni-Ti atomic co-clusters during this short aging time. The concomitant effects of a reverse transformation of martensite to austenite during aging and a gradual increase in both size of the clusters and distance between them contributed to a decrease in strength after aging for 15 seconds. This decline proceeded until aging for 300 seconds and was followed by a secondary hardening reaction toward peak hardness (at 10,800 seconds) and subsequent overaging. This secondary hardening was associated with fine-scale precipitation of Ni_3Ti and this process was accelerated by deformation prior to aging, leading to a reduction or elimination of hardness decline after the initial cluster hardening.
机译:研究了Fe-25.3Ni- 1.7 Ti(wt pct)合金在未变形试样和在老化前冷变形10或20 pct的试样中的时效硬化行为。使用透射电子显微镜(TEM)和原子探针分析观察了老化过程中的微观结构变化,并且这些变化与通过显微硬度和剪切冲头测试测量的机械性能有关。在550℃时效仅5秒钟后,硬度,强度和延展性就达到了极佳的组合。我们认为,这种快速强化是由于位错摩擦效应所致,该位错摩擦效应是由于形成了Ni-Ti原子钴的精细分散而引起的。在较短的老化时间内聚集。马氏体在时效过程中反向转变为奥氏体的伴随作用,以及团簇的大小和它们之间的距离的逐渐增加,导致了时效15秒后强度的降低。这种下降一直持续到老化300秒,然后发生第二次硬化反应,达到峰值硬度(在10,800秒处),随后发生了过时效。二次硬化与Ni_3Ti的细小析出有关,该过程在时效之前因变形而加速,从而导致初始团簇硬化后硬度下降的减少或消除。

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