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COMBUSTION SYNTHESIS OF NANOCOMPOSITE POWDERS USING A MECHANICALLY ACTIVATED PROCESS

机译:机械活化法燃烧合成纳米复合粉

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The authors investigated aspects of nanocomposite structure formation in Fe + Al+ Fe_2O_3 and Fe + Al+ Cr_2O_3 powder mixtures during combustion synthesis using precursors formed as a result of mechanochemical interaction at the stage of preliminary mechanical activation of reactive mixtures. Despite the significant difference in thermal effects, two types of reactions (aluminothermic reduction of oxides and formation of intermetallics from elements, though in the trace amounts) can take place during mechanical activation. Local chemical concentrations at the interfaces and quick reaction kinetics in the nanometer scaled diffusion couples are probably responsible for the simultaneous passing the reactions in mechanically activated mixtures. Nanocomposite structure of the precursors with fine alumina inclusions allows forming end products inheriting structural morphology of the precursors in toto. Complete reduction of oxides with aluminum at the stage of mechanical activation is not a necessary condition for nanostructure preservation during the following self-propagating high-temperature synthesis. The last one is probably connected with the high rate of heterogeneous nucleation at the early stage of combustion and the optimized heat evolution and cooling conditions.
机译:作者研究了在燃烧合成过程中,Fe + Al + Fe_2O_3和Fe + Al + Cr_2O_3粉末混合物中纳米复合结构形成的方面,这些混合物使用了由机械化学相互作用形成的前体,这些前体是在反应混合物的初步机械活化阶段通过机械化学相互作用而形成的。尽管在热效应方面存在显着差异,但在机械活化过程中仍会发生两种类型的反应(铝的热还原和元素间金属间化合物的形成,尽管微量)。界面处的局部化学浓度和纳米级扩散对中的快速反应动力学可能是导致反应同时通过机械活化混合物的原因。具有精细氧化铝夹杂物的前驱体的纳米复合结构允许形成最终继承前驱体结构形态的最终产品。在随后的自蔓延高温合成过程中,在机械活化阶段用铝完全还原氧化物并不是保存纳米结构的必要条件。最后一个可能与燃烧初期的高异质成核率以及最佳的放热和冷却条件有关。

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