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Influence of Sintering Cycle and Chemical Composition on the Amount of Martensite Obtained After Cooling of PM Nickel Steels

机译:烧结周期和化学成分对永磁镍钢冷却后获得的马氏体含量的影响

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Despite numerous reports on sintered PM steels in the Fe-Mo-Ni-Cu-C system the dependence of vol% martensite for a given chemical composition as a function of sintering parameters and cooling rate, requires further understanding and characterisation. Considering sinter-hardening cycles, thus avoiding extreme cooling rates, martensite formation directly relates to chemical gradients generated during sintering which consequently define microstructural areas of distinct local hardenability. Using a wide range of cooling rates and sintering time-temperature combinations, as well as Fe-based powders with and without prealloyed Mo, this work quantitatively shows that the relative amounts of equilibrium and non-equilibrium transformation products after cooling are a direct consequence of the redistribution of elements during processing where Ni and C play a dominant role. An in-depth characterisation of the relationship between chemical composition and maximum martensite vol% formed was carried out aided by EBSD, XRD and SEM-EDS analyses.
机译:尽管有许多关于Fe-Mo-Ni-Cu-C系统中烧结PM钢的报道,但对于给定的化学组成,马氏体的体积百分比与烧结参数和冷却速率之间的关系仍需要进一步的了解和表征。考虑到烧结硬化循环,从而避免极端的冷却速度,马氏体的形成直接与烧结过程中产生的化学梯度有关,因此,化学梯度会定义出具有明显局部淬透性的微结构区域。使用广泛的冷却速率和烧结时间-温度组合,以及带有或不带有预合金Mo的铁基粉末,这项工作定量地表明,冷却后平衡和非平衡转变产物的相对量是直接的结果。 Ni和C占主导地位的加工过程中元素的重新分布。借助EBSD,XRD和SEM-EDS分析,对化学成分与形成的最大马氏体体积百分比之间的关系进行了深入表征。

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