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首页> 外文期刊>Journal of manufacturing science and engineering: Transactions of the ASME >Directed Energy Deposition of Zirconia-Toughened Alumina Ceramic: Novel Microstructure Formation and Mechanical Performance
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Directed Energy Deposition of Zirconia-Toughened Alumina Ceramic: Novel Microstructure Formation and Mechanical Performance

机译:氧化锆增韧氧化铝陶瓷的定向能量沉积:新型微观结构形成和机械性能

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摘要

Over the past two decades, a considerable amount of work has been done on zirconia-toughened alumina (ZTA) to take advantage of the recognized toughening effect induced by ZrO2. In fabricating customized or complex-shaped ZTA parts, conventional manufacturing processes, including slip casting and powder metallurgy, are regarded as time-consuming and cost-intensive. In response to these problems, directed energy deposition (DED) has been proposed and utilized to fabricate customized ZTA parts with highly flexible features in a shorter cycle time at a lower cost. Investigations have been reported on studying effects of input variables (such as laser power) in DED of ZTA parts, however, there are very limited investigations on effects of the ZrO2 content. In this investigation, the effects of the ZrO2 content on microstructures and mechanical properties of DED-fabricated ZTA parts are studied. Experimental results show that at lower levels of ZrO2 contents (5 wt%, 10 wt%, and 20 wt%), a novel three-dimensional quasi-continuous network (3DQCN) microstructure is tailored, whereas at higher levels of ZrO2 contents (30 wt%, 35 wt%, and 41.5 wt%), eutectic microstructure dominates the whole part. Both the 3DQCN microstructure and the eutectic microstructure are beneficial for toughening ZTA parts. In addition, the 3DQCN microstructure contributes to hardening ZTA parts.
机译:在过去的二十年中,已经在氧化锆增韧氧化铝(ZTA)上进行了相当数量的作品,以利用ZrO2诱导的公认的增韧效果。在制造定制或复杂的ZTA零件中,常规制造工艺包括滑铸和粉末冶金,被认为是耗时和成本密集的。响应于这些问题,已经提出并利用定向能量沉积(DED),并利用以较低的循环时间在较短的成本下以高度灵活的特征制造定制的ZTA部件。据报道,研究对ZTA零件的输入变量(如激光功率)的研究效果,然而,对ZrO2含量的影响非常有限。在该研究中,研究了ZrO2含量对金色制造ZTA零件的微观结构和机械性能的影响。实验结果表明,在较低水平的ZrO2内容物(5wt%,10wt%和20wt%)中,量身定制了一种新的三维准连续网络(3DQCN)微结构,而在较高水平的ZrO2内容物(30 WT%,35wt%和41.5wt%),共晶微观结构主要部分。 3DQCN微观结构和共晶微观结构都有利于增韧ZTA部件。此外,3DQCN微观结构有助于硬化ZTA部件。

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