首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >Effect of Zr Addition on Microstructure, Hardness and Oxidation Behavior of Arc-Melted and Spark Plasma Sintered Multiphase Mo-Si-B Alloys
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Effect of Zr Addition on Microstructure, Hardness and Oxidation Behavior of Arc-Melted and Spark Plasma Sintered Multiphase Mo-Si-B Alloys

机译:Zr添加对弧形熔化和火花等离子体烧结多相MO-Si-B合金微观结构,硬度和氧化行为的影响

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摘要

The effect of 2 at. pct Zr addition at the expense of Mo on microstructural evolution, hardness as well as non-isothermal and isothermal oxidation behavior of arc-melted or spark-plasma sintered (SPS) 76Mo14Si10B and 79.5Mo12Si8.5B alloys, has been examined. The microstructures of both arc-melted and SPS alloys have exhibited -Mo, Mo3Si and Mo5SiB2.These alloys, particularly those processed by SPS have also shown dispersion of SiO2 particles, and these are largely replaced by ZrO2 at interphase boundaries in the Zr-containing alloys. Alloying with Zr or processing by SPS has led to refinement of microstructure, which in turn has caused significant hardness enhancement. During heating from ambient temperature to 1250 degrees C in air inside a thermogravimetric analyzer, initial mass gain at approximate to 800 degrees C is found to be followed by rapid mass loss. Isothermal oxidation studies in the temperature range of 800 degrees C-1300 degrees C have shown initial mass loss caused by vaporization of MoO3 being followed by a regime of no change in mass. Besides B2O3-SiO2, MoO2 and Mo have been found in the oxide scales of all alloys, whereas ZrO2 and ZrSiO4 have been found along with Zr(MoO4)(2) in case of Zr-containing alloys. Reduced mass loss is observed in Zr-containing alloys with the maximum improvement being observed for exposure at 800 degrees C, not only due to higher volume fractions of Mo3Si and Mo5SiB2 contributing to formation of B2O3-SiO2, but also because MoO3 is partly consumed to form non-volatile Zr(MoO4)(2). Furthermore, refinement of microstructures obtained by Zr addition or processing by SPS increases the net area covered by interphase interfaces, which provides short circuit paths for diffusion and enhances the kinetics of formation of protective B2O3-SiO2 scale.
机译:2次效果。 PCT ZR以牺牲Mo的微观结构演化,硬度以及弧形熔化或火花血浆烧结(SPS)76MO14SI10B和79.5MO12SI8.5B合金的非等温和等温氧化行为的牺牲。弧形熔化和SPS合金的微观结构表现出-MO,MO3SI和MO5SIB2.这些合金,特别是由SP加工的合金也显示出SiO 2颗粒的分散,并且这些是在含Zr的间隔边界处的ZrO2在很大程度上取代合金。用Zr或SPS处理的合金导致微观结构的细化,这又引起了显着的硬度增强。在热量分析仪内的空气中从环境温度加热到1250℃时,发现近似为800℃的初始质量增益,然后进行快速质量损失。在800℃-1300摄氏度的温度范围内的等温氧化研究表明,由于MOO3的蒸发而导致的初始质量损失,然后是质量不变的变化的制度。除了B2O3-SiO 2,在所有合金的氧化物鳞片中发现了MOO2和Mo,而在含Zr的合金的情况下,已发现ZrO2和ZrSiO4和Zr(Moo4)(2)。在含Zr的合金中观察到大量损失,在800℃下观察到最大改善,不仅是由于MO3SI和MO5SIB2的较高体积分数,而且因为MOO3部分消耗形成非挥发性Zr(Moo4)(2)。此外,通过SPS加入或通过SPS加工获得的微观结构的细胞的细胞增加了间隔界面覆盖的网面积,其提供了用于扩散的短路路径,并增强保护性B2O3-SiO2标度的形成动力学。

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