Solid state sintering and consolidation of Al powders and Al matrix composites

F Tang, I.E Anderson, S.B Biner
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引用次数: 52

Abstract

As an attempt to depart from conventional transient liquid phase sintering practice, solid state vacuum sintering was studied in loose powder and in hot quasi-isostatically forged samples composed of commercial inert gas atomized (CIGA) or high purity Al powder. The high purity Al powder was generated by a gas atomization reaction synthesis (GARS) technique that results in spherical powder with a far thinner surface oxide. After vacuum sintering at 525 °C for up to 100 h, SEM results showed that the GARS Al powder achieved significantly advanced sintering stages, compared to the CIGA Al powder. Tensile results from the forged samples also showed that although its ultimate tensile strength is lower, 95 vs. 147 MPa, the ductility of the GARS pure Al sample is higher than the CIGA Al sample. Forging also consolidated a model powder-based composite system composed of an Al matrix reinforced with quasi-crystalline Al–Cu–Fe powders, where the same powder synthesis methods were compared. Auger surface analysis detected evidence of increased matrix/reinforcement interfacial bonding in the composite sample made from GARS powder by alloy interdiffusion layer measurements, consistent with earlier tensile property measurements. The overall results indicated the significant potential of using Al powders produced with a thin, high purity surface oxide for simplifying current Al powder consolidation processing methods.

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Al粉末和Al基复合材料的固态烧结与固结
为了偏离传统的瞬态液相烧结实践,在松散粉末和由商用惰性气体雾化(CIGA)或高纯度Al粉末组成的热准等静压锻造样品中研究了固态真空烧结。高纯度Al粉末是通过气体雾化反应合成(GARS)技术产生的,该技术产生了具有薄得多的表面氧化物的球形粉末。在525°C下真空烧结长达100小时后,SEM结果表明,与CIGA Al粉末相比,GARS Al粉末实现了显著提前的烧结阶段。锻造样品的拉伸结果还表明,尽管其极限拉伸强度较低,分别为95和147MPa,但GARS纯Al样品的延展性高于CIGA Al样品。锻造还巩固了由准结晶Al–Cu–Fe粉末增强的Al基体组成的模型粉末基复合材料系统,并对相同的粉末合成方法进行了比较。俄歇表面分析通过合金互扩散层测量检测到由GARS粉末制成的复合材料样品中基体/增强界面结合增加的证据,与早期的拉伸性能测量结果一致。总体结果表明,使用由薄的高纯度表面氧化物生产的Al粉末对于简化当前的Al粉末固结处理方法具有显著的潜力。
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