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A fundamental study of the formation of aluminum oxide/aluminum composites from oxidation of liquid aluminum alloys

机译:液态铝合金氧化形成氧化铝/铝复合材料的基础研究

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摘要

Thermogravimetric and microstructural analyses coupled with updated thermodynamic data for the Al-Mg-O system, were used to study the oxidation behavior and underlying mechanisms during formation of Al$sb2$O$sb3$/Al composites by direct oxidation of molten Al-Mg alloys between 1000 and 1300$spcirc$C.;Oxidation starts with the formation of surface MgO followed by rapid growth of a mixed MgAl$sb2$O$sb4$ (spinel) + metal layer during heating to composite growth temperatures. The temperature at which the transformation occurs depends on the Mg content in the alloy and the heating rate. Rapid spinel growth typically leads to surface passivation and an abrupt drop in the oxidation rate. A long incubation period of slow and negligible oxidation ensues wherein the initial spinel further develops into a multilayer structure consisting of MgO/dense spinel/spinel + metal between the surface and the bulk alloy. Incubation ends with the nucleation of composite nodules when continuous metal paths breach the dense spinel to reach the external MgO. The role of SiO$sb2$ in substantially reducing the incubation period is discussed.;Composite nucleation starts with the formation of nodules consisting of additional spinel + metal which is later replaced by Al$sb2$O$sb3$ + metal. The extent to which the spinel grows before Al$sb2$O$sb3$ forms was examined as a function of temperature and Mg content in the alloy.;Further growth and coalescence of the Al$sb2$O$sb3$+Al nodules leads to bulk Al$sb2$O$sb3$/Al composite formation. In the present alloys, composite growth occurs primarily in an oscillatory rate regime (1000-1200$spcirc$C). The rate oscillations manifest themselves in the composite microstructure as bands with alternating Al$sb2$O$sb3$ to metal volume fraction ratios. The formation of bands was associated to periodic variations of the microstructure at the growth front. The evolution of these bands was discussed in light of the current understanding of the growth mechanism.
机译:利用热重分析和微结构分析以及更新的Al-Mg-O系统热力学数据,研究了熔融Al-Mg的直接氧化形成Al $ sb2 $ O $ sb3 $ / Al复合材料时的氧化行为及其潜在机理。合金在1000到1300°C之间氧化;氧化开始于表面MgO的形成,然后在加热到复合材料生长温度期间快速生长混合的MgAl $ sb2 $ O $ sb4 $(尖晶石)+金属层。发生相变的温度取决于合金中的镁含量和加热速率。尖晶石快速生长通常会导致表面钝化和氧化速率突然下降。随之而来的是一个缓慢而可忽略不计的氧化反应的长期潜伏期,其中初始尖晶石进一步发展成在表面与块状合金之间由MgO /致密尖晶石/尖晶石+金属组成的多层结构。当连续的金属路径突破致密的尖晶石到达外部MgO时,复合结节的成核作用结束了孵化。讨论了SiO $ sb2 $在实质上减少潜伏期中的作用。复合成核始于形成由额外的尖晶石+金属组成的结节,随后由Al $ sb2 $ O $ sb3 $ +金属取代。考察了尖晶石在Al $ sb2 $ O $ sb3 $形成之前的生长程度与合金中温度和Mg含量的关系。; Al $ sb2 $ O $ sb3 $ + Al结核的进一步生长和聚结散装Al $ sb2 $ O $ sb3 $ / Al复合材料的形成。在目前的合金中,复合材料的生长主要发生在振荡速率范围内(1000-1200spC)。速率振荡在复合微结构中表现为以Al $ sb2 $ O $ sb3 $与金属体积分数之比交替变化的谱带。带的形成与生长前沿的微观结构的周期性变化有关。根据目前对生长机制的理解,讨论了这些条带的进化。

著录项

  • 作者

    Salas Martinez, Olimpia.;

  • 作者单位

    University of California, Santa Barbara.;

  • 授予单位 University of California, Santa Barbara.;
  • 学科 Materials science.
  • 学位 Ph.D.
  • 年度 1992
  • 页码 155 p.
  • 总页数 155
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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