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首页> 外文期刊>International Journal of Refractory Metals & Hard Materials >Microwave-assisted combustion synthesis in a mechanically activated Al-TiO_2-H_3BO_3 system
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Microwave-assisted combustion synthesis in a mechanically activated Al-TiO_2-H_3BO_3 system

机译:机械活化的Al-TiO_2-H_3BO_3体系中的微波辅助燃烧合成

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The Al_2O_3-TiB_2 in-situ composite has been fabricated by different techniques. In this work, the mechanical activation process has been used to aid microwave-assisted combustion synthesis (MACS) to produce the Al_2O_3-TiB_2 in-situ composite. For this purpose, the thermite mixture of Al, TiO_2 and boric acid (H_3BO3) powders was used as the raw materials, and was mechanically activated at different milling speeds. The results of X-ray phase analysis of the mechanically activated samples after combustion synthesis showed that the Al_2O_3-TiB_2 in-situ composite has been successfully fabricated by thermal explosion mode of combustion synthesis in microwave, while no combustion synthesis occurred for the unmilled sample. Also, it was found that by increasing the milling speed from 250 to 400 rpm, the purity of the final products has been increased; while further milling speed up to 550 rpm reduced the purity of the final products. The effects of milling speed were also studied by means of differential scanning calorimetry (DSC) measurements. It was shown that by increasing the energy level of the reactants via milling speed, the ignition temperature and the intensity of exothermic peaks in the DSC curves have been changed. Finally, in order to have a good understanding about the in-situ formation of such ceramic composites, a reaction mechanism was proposed based on the experimental results. The synthesized composite exhibited high microhardness value of about 1950 Hv in dense parts.
机译:通过不同的技术制备了Al_2O_3-TiB_2原位复合材料。在这项工作中,机械活化过程已被用于辅助微波辅助燃烧合成(MACS)以生产Al_2O_3-TiB_2原位复合材料。为此,将Al,TiO_2和硼酸(H_3BO3)粉末的铝热剂混合物用作原料,并以不同的研磨速度对其进行机械活化。燃烧合成后的机械活化样品的X射线相分析结果表明,Al_2O_3-TiB_2原位复合材料是通过微波在微波中燃烧合成的热爆炸模式成功制备的,而未研磨样品未发生燃烧合成。此外,还发现通过将研磨速度从250 rpm增加到400 rpm,最终产品的纯度得到了提高。而进一步的研磨速度高达550 rpm降低了最终产品的纯度。还通过差示扫描量热法(DSC)测量研究了铣削速度的影响。结果表明,通过研磨速度提高反应物的能级,改变了点火温度和DSC曲线中放热峰的强度。最后,为了更好地了解这种陶瓷复合材料的原位形成,基于实验结果提出了一种反应机理。合成的复合材料在致密部分显示出约1950 Hv的高显微硬度值。

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