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GROWTH KINETICS OF MAGNESIO-ALUMINATE SPINEL IN Al/Mg LAMELLAR COMPOSITE INTERFACE

机译:Al / Mg层状复合界面中镁铝尖晶石的生长动力学

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摘要

The synthesis of Mg-Al_2O_3 double layered interface is introduced via the application of hot isostatic pressing, HIPing, in Al-Mg foils. Polycrystalline spinel layers are grown experimentally at the interfacial contacts between Al-Mg foils. The growth behavior of the spinel layers along with the kinetic parameters characterizing interface motion and long-range diffusion is established. Low melting depressant (LMD), Zn, and alloying element segregation tends to form micro laminated and/or Nano structure interphase in a lamellar composite solid state processing. Nano composite ceramic interphase materials offer interesting mechanical properties not achievable in other materials, such as superplastic flow and metal-like machinability. Microstructural characterization, mechanical characterization is also established via optical microscopy scanning electron microscopy, energy dispersive X-ray spectroscopy and tensile testing. Chemical and mechanical bonding via inter diffusion processing with alloy segregation are dominant for interphase kinetics. Mechanical characterization with interfacial shear strength is also introduced. HIPing processing is successfully applied on 6082 Al-alloy and AZ31 magnesium alloy for either particulate or micro-laminated interfacial composite processing. The interphase kinetic established through localized micro plasticity, metal flow, alloy segregation and delocalized Al oxide and Mg oxide. The kinetic of interface/interphase induce new nontraditional crack mitigation a long with new bridging and toughening mechanisms.
机译:Mg-Al_2O_3双层界面的合成是通过在Al-Mg箔中进行热等静压HIPing引入的。在Al-Mg箔之间的界面接触处实验性地生长了多晶尖晶石层。建立了尖晶石层的生长行为以及表征界面运动和远距离扩散的动力学参数。低熔点抑制剂(LMD),锌和合金元素的偏析往往会在层状复合固态过程中形成微层压和/或纳米结构的中间相。纳米复合陶瓷相间材料提供了其他材料无法实现的有趣的机械性能,例如超塑性流动和类似金属的切削性。还通过光学显微镜,扫描电子显微镜,能量色散X射线光谱和拉伸测试建立了微结构表征,机械表征。通过中间扩散处理与合金偏析的化学键合和机械键合是相间动力学的主导。还介绍了具有界面剪切强度的机械特性。 HIPing工艺已成功应用于6082铝合金和AZ31镁合金,用于颗粒或微层压界面复合加工。通过局部微观可塑性,金属流动,合金偏析以及局部氧化铝和氧化镁建立的相间动力学。界面/相间的动力学通过新的桥接和增韧机制,长期诱导了新的非传统裂纹的缓解。

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