Features of the Solid Solution (Mo 0.9 ,Cr 0.1 )Si 2 Formation Depending on the State of Initial Mixture

I. Kud’, L. Ieremenko, L. S. Likhoded, I. Uvarova, D. P. Zyatkevich
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引用次数: 3

Abstract

The regularities of solid state synthesis of the solid solution (Mo0.9 ,Cr0.1)Si2 in vacuum have been investigated in the temperature range 400-1200℃ depending on the dispersity and energetic state of the init ial powders, namely mo lybdenum, chro miu m and silicon. The energetic state of the in itial mixture was established to be a determin ing factor which affects the principal features of solid state interaction whereas an increase in dispersity only influences the temperature of the interaction start. When non-activated initial mixtures and ones mechanically activated in a p lanetary mill with lo w number of dru m revolutions were used, the solid solution formation proceeded owing to diffusion of silicon into metals through successive formation of lo wer and higher molybdenum-based silicide phases followed by their interaction. Mechanical activation in a planetary mill with high number of dru m revolutions was accompanied by not only decrease in particle size but also changes in the energetic state of the reaction mixture, which resulted in changing the regularities of the solid solution formation. Herein solid solutions on the basis of two higher molybdenum silicide phases, tetra- and hexagonal mod ifications, were formed with further poly morphic transition of the unstable high temperature hexagonal β-MoSi2 phase into the lo w temperature tetragonal α-MoSi2 phase. It has been established that temperature of the beginning of interaction decreases by 100℃ as compared with non-activated initial mixtures and temperature of the end of the process depends on the amount of accu mu lated energy: under low energy mechanical activation the process is co mplete at 1200℃, while a h igh energy activation decreases this temperature by 200-400℃ depending on the duration of activation.
初始混合状态下固溶体(Mo 0.9,Cr 0.1) si2形成的特征
在400 ~ 1200℃的真空条件下,研究了(Mo0.9,Cr0.1)Si2固溶体的固态合成规律,这取决于初始粉末(钼、钼、铬、硅)的分散性和能态。初始混合物的能态是影响固态相互作用主要特征的决定因素,而分散度的增加只影响相互作用开始时的温度。当使用非活化的初始混合物和在行星磨机中机械活化的初始混合物时,通过低转速和高转速的钼基硅化物相的连续形成以及它们之间的相互作用,硅扩散到金属中,从而形成固溶体。在高转数的行星磨机中,机械活化不仅伴随着颗粒尺寸的减小,而且伴随着反应混合物能态的变化,从而改变了固溶体形成的规律。在高温不稳定的六方型β-MoSi2相向低温四方型α-MoSi2相进一步多晶化转变的基础上,形成了四方型和六方型两种较高硅化钼相的固溶体。结果表明,与未活化的初始混合物相比,作用开始时的温度降低了100℃,过程结束时的温度取决于累积能量的多少:在低能机械活化下,该过程在1200℃时完成,而高能活化则根据活化时间的长短使该温度降低了200-400℃。
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