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Titanium silicide (Ti_5Si_3) synthesis under shock loading

机译:冲击载荷下硅化钛(Ti_5Si_3)的合成

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摘要

Ti-Si binary system shows exothermic reactions during the formation of several line compounds, which can be used for self-propagating high temperature synthesis (SHS) of starting powders. In this research, titanium silicide (Ti_5Si_3) was synthesized from high purity Ti and Si powders using shock waves in a 10 cm diameter and 14 m long gas gun. Influences of compact density, shock velocity, milling time and filler concentrations were studied. Mullite was used as an inert ceramic filler in different wt.% and mixed with ball-milled powders. Phase analysis, microstructural analysis and microhardness measurements were done on samples that were recovered after shock loading. Results indicate that powders with a lower compact density generated higher temperatures during shock consolidation. The change in velocity generated different compressive stresses in Cu target ranging 4.4-8.6 GPa, and found to have a significant effect on the reaction kinetics. Both increasing filler material amount and decreasing milling time reduced the reaction kinetics. Though the presence of mullite decreased the reaction kinetics, it also reduced residual porosity in the compacts via forming an in situ intermetallic-ceramic composite.
机译:Ti-Si二元体系显示出几种线型化合物形成过程中的放热反应,可用于原料粉末的自蔓延高温合成(SHS)。在这项研究中,硅化钛(Ti_5Si_3)是由高纯度Ti和Si粉末在10 cm直径和14 m长的气枪中使用冲击波合成的。研究了压坯密度,冲击速度,研磨时间和填料浓度的影响。莫来石用作不同重量%的惰性陶瓷填料,并与球磨粉混合。在冲击载荷后回收的样品上进行了相分析,显微组织分析和显微硬度测量。结果表明,密度较低的粉末在冲击固结过程中会产生较高的温度。速度的变化在Cu靶材中产生了4.4-8.6 GPa的不同压缩应力,并发现对反应动力学有显着影响。增加填料量和减少研磨时间都降低了反应动力学。尽管莫来石的存在降低了反应动力学,但通过形成原位金属间陶瓷复合物,它也降低了压坯中的残余孔隙率。

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