烧结钢中的磷:磷与钼的相互作用

Q4 Materials Science Powder Metallurgy Progress Pub Date : 2016-10-01 DOI:10.1515/pmp-2016-0002
H. Danninger, B. Üregen
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引用次数: 0

摘要

摘要磷作为一种合金元素在粉末冶金中很常见,工业上使用的磷含量明显高于锻钢中的磷含量。然而,烧结钢的脆化效应也有报道,部分取决于存在的合金元素。Mo是烧结钢中最常见的VI族元素,本文研究了添加磷对Mo合金化PM钢力学性能的影响。分别制备了Mo和P含量不同的Fe-x%Mo-0.7% cy % P型PM钢。结果表明,P在这些材料中也激活了烧结,并增强了Mo的均质化,但事实上,这些钢中存在脆化的风险,而脆化的风险很大程度上取决于材料中Mo和P的结合:如果超过临界水平,就会观察到脆化。当Mo含量较低时,较高的P浓度是可以接受的,反之亦然,但例如在Fe-1.5%Mo-0.7%C-0.45%P材料中,会发生明显的晶间脆化,烧结硬化效应进一步增强。在烧结温度较高和加热/冷却速度较快的情况下,这种不良现象更为明显;在混合粉末和预合金粉末制备的材料中分别观察到这种现象。在脆化试样中观察到的这种典型的晶间破坏,特别是在冲击试验之后,表明脆性相在晶界处析出,当超过Mo和P之间的溶解度积时,这一点很明显。
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Phosphorus in Sintered Steels: Interaction of Phosphorus with Mo
Abstract Phosphorus as an alloy element is quite common in powder metallurgy, the contents industrially used being markedly higher than those present in wrought steels. However, embrittlement effects are reported also for sintered steels, in part depending on the alloy elements present. In this study, the influence of phosphorus addition on the mechanical properties of PM steels alloyed with Mo, as the most common VI group element in sintered steels, was investigated. PM steels of the type Fe-x%Mo-0.7%Cy% P were manufactured with varying contents of Mo and P, respectively. It showed that P activates sintering also in these materials and enhances Mo homogenization, but there is in fact a risk of embrittlement in these steels that however strongly depends on the combination of Mo and P in the materials: If a critical level is exceeded, embrittlement is observed. At low Mo contents, higher P concentrations are acceptable and vice versa, but e.g. in a material Fe-1.5%Mo-0.7%C-0.45%P, pronounced intergranular embrittlement occurs, further enhanced by sinter hardening effects. This undesirable phenomenon is more pronounced at higher sintering temperatures and in case of faster heating/cooling; it was observed both in materials prepared from mixed and prealloyed powders, respectively. This typical intergranular failure observed with embrittled specimens, in particular after impact testing, indicates the precipitation of brittle phases at the grain boundaries, apparently when exceeding the solubility product between Mo and P.
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Powder Metallurgy Progress
Powder Metallurgy Progress Materials Science-Metals and Alloys
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