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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Thermomechanical synthesis of hybrid in-situ Al-(Al3Ti+Al2O3) composites through nanoscale Al-Al2TiO5 reactive system
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Thermomechanical synthesis of hybrid in-situ Al-(Al3Ti+Al2O3) composites through nanoscale Al-Al2TiO5 reactive system

机译:通过纳米级Al-Al2TiO5反应系统,热机理合成杂交原位Al-(Al3Ti + Al2O3)复合材料

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In this work, nanostructured aluminum titanate (Al2TiO5 or AT) was synthesized by the citrate sol gel method. Then, different volume fractions of this ceramic were blended with Al powder through different durations of the high-energy vibratory milling. The effect of mechanical milling on the thermal degradation of AT in exposure to Al and formation mechanism of in-situ Al2O3 and Al3Ti particles were explored in three conditions: (i) in the powder form; (ii) after annealing of green compact; and (iii) after hot extrusion. In the powder form, it was shown that the mechanical milling is able to significantly diminish the thermal stability of AT, so that the required temperature for the Al3Ti formation decreases from 600 to about 450 degrees C. Also, by extending the mechanical milling duration, the contact surface for interfacial reactions between Al and AT increases and the formation of Al3Ti and Al2O3 is facilitated. By selecting the optimum duration of mechanical milling, this study successfully fixed the microstructure problems of not-milled as-annealed composites i.e. unreacted AT particles and oxygen evolution-arisen cracks, and produced in-situ composite inside each Al particle. However, the induced work hardening of these milled particles hinders the perfect consolidation. To deal with this challenge, the hot extrusion at 535 degrees C was conducted. The obtained microstructure was composed of very fine (<= 200 nm) semispherical Al3Ti and Al2O3 particles uniformly distributed within the Al matrix. To evaluate the mechanical response of the fabricated nanocomposites, the micro-hardness and nanoindentation testing were carried out. The results proved that the hardness and elastic modulus of the nanocomposites reach 143 HV and 90 GPa, respectively, indicating a significant improvement in the mechanical properties of these systems compared to not-milled extruded composites. Finally, the role of reinforcing particles in strengthening of composite was evaluated. (C) 2019 Elsevier B.V. All rights reserved.
机译:在这项工作中,通过柠檬酸溶胶凝胶法合成纳米结构铝钛(Al2TiO5或At)。然后,通过高能振动研磨的不同持续时间与Al粉末混合这种陶瓷的不同体积分数。机械研磨对在原位Al2O3和Al3TI颗粒暴露于Al和地层机制的热降解的影响,在三种条件下探讨了粉末形式; (ii)退火后的绿色紧凑型;和(iii)热挤压后。以粉末形式,它被示出的是,机械研磨能够显著减少AT的热稳定性,以便用于形成的Al3Ti所需的温度从600下降到约450摄氏度此外,通过延长机械研磨的持续时间,促进了Al和增加的界面反应的接触表面和Al3Ti和Al2O3的形成。通过选择机械研磨的最佳持续时间,该研究成功地固定了未磨削的作为退火复合材料的微观结构问题,即在颗粒和氧气进化 - 出现的裂缝中未被制成,并在每个Al颗粒内产生原位复合材料。然而,这些研磨颗粒的诱导工作硬化阻碍了完美的固结。为了处理这一挑战,进行了535摄氏度的热挤出。所得微观结构由非常细(<= 200nm)的半球形Al3Ti和均匀分布在Al基质内的Al 2 O 3颗粒组成。为了评估制造的纳米复合材料的机械响应,进行微硬度和纳米压孔测试。结果证明,与未研磨的挤出复合材料相比,纳米复合材料的硬度和弹性模量分别达到143HV和90GPa,表明这些系统的机械性能显着改善。最后,评价了增强颗粒在加强复合材料中的作用。 (c)2019 Elsevier B.v.保留所有权利。

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