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Development of high performance powder metallurgy steels by high-energy milling

机译:通过高能铣削开发高性能粉末冶金钢

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High-energy milling is considered to be one of the most efficient techniques for producing materials that have a well-controlled chemical composition and microstructural features that are difficult to obtain using other synthesis routes. In this study, the mechanical alloying technique (MA) was used to develop special powder metallurgy (PM) steels with two different types of properties. The use of this technique is essential for obtaining the target microstructure, which ensures the desired performance of the resulting material. Oxide dispersion strengthened (ODS) ferritic steels were produced using MA based on the prealloyed grade Fe-20Cr-5Al and Fe-14Cr-5Al-3 W steels with the addition of Ti and Y2O3 as reinforcements. The incorporation of Y2O3 enables a homogeneous dispersion of nano-oxides and nano-clusters in a submicron-grained structure that should enhance the mechanical properties up to 600 °C. In addition, the base alloying system, Fe-Cr-Al (Ti), should enable the development of protective oxide layers through high-temperature treatments, which improves the compatibility with the environment, avoids liquid-metal embrittlement and contributes to the increase of the mechanical response up to 600 °C. Furthermore, microalloyed powders can be obtained using MA and consolidated with a pressure-assisted sintering process in an attempt to control the final grain size, to achieve microalloyed steels, and to achieve an extraordinary balance of properties.
机译:高能研磨被认为是生产具有良好控制的化学组成和微观结构特征的材料的最有效技术之一,这些材料很难通过其他合成途径获得。在这项研究中,机械合金化技术(MA)用于开发具有两种不同类型性能的特殊粉末冶金(PM)钢。该技术的使用对于获得目标微观结构至关重要,该目标微观结构确保了所得材料的理想性能。氧化物弥散强化(ODS)铁素体钢是使用MA基于预合金级Fe-20Cr-5Al和Fe-14Cr-5Al-3 W钢,并添加Ti和Y2O3作为增强材料而生产的。 Y 2 O 3的掺入可将纳米氧化物和纳米团簇均匀分散在亚微米级的结构中,该结构应可提高高达600°C的机械性能。此外,基础合金体系Fe-Cr-Al(Ti)应该能够通过高温处理形成保护性氧化层,从而改善与环境的相容性,避免液-金属脆化并有助于增加金属的含量。最高600°C的机械响应。此外,可以使用MA来获得微合金粉末,并通过压力辅助烧结工艺进行固结,以控制最终晶粒尺寸,以实现微合金钢,并实现非凡的性能平衡。

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