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The effect of chemical composition and milling conditions on composite microstructure and ignition thresholds of Al-Zr ball milled powders

机译:化学成分及铣削条件对Al-Zr球磨粉体复合微观结构和点火阈值的影响

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Specific energetic applications such as biological and chemical agent defeat, benefit from Al/metal composite materials that are easy to ignite and burn for long durations. Ignition is enabled when Al mixes with a second metal at low temperatures to form an intermetallic compound with a large, exothermic heat release. The exothermic reaction lowers the ignition threshold dramatically and raises the temperature of the powder to enable prolonged combustion even in large powders. This paper explores the effect of chemical composition and synthesis conditions on the resulting microstructure and the ignition of Al/Zr composite powders. The powders are prepared by arrested reactive ball milling (ARM) using two ball to powder mass ratios (BPR) 5 and 10, with a milling time of one hour. Here we report on the size, the microstructure and the reaction properties of the as-milled, composite powders for six different compositions: Al:3Zr, 2Al:3Zr, Al:Zr, 3Al:2Zr, 3Al:Zr and 4Al:Zr. The asmilled Zr-rich and Al-rich powders are typically larger than powders with chemistries approaching a 1:1 stoichiometric ratio, and the BPR 10 powders are consistently smaller than the BPR 5 powders. The particle interiors consist of Zr inclusions in an Al matrix, with larger Zr inclusions seen for more Al-rich chemistries and for BPR 5 samples. X-ray diffraction data suggests that the as-milled Al-rich chemistries and the BPR 5 samples have less intermixing of Al and Zr as well. The lowest ignition temperatures (639 K +/- 15 K and 646 K +/- 18 K) were measured for BPR 5 3Al:2Zr and Al:Zr powders, respectively, and were correlated with larger heats of Al-Zr formation reactions as measured by differential thermal analysis. While intermetallic reactions were initiated in all powders, combustion was not enabled for the two most Al-rich compositions. The factors that influence the ignition of exothermic reactions in the Al/Zr based composite powders are discussed. (C) 2018 Elsevier B.V. All rights reserved.
机译:特定的精力充沛的应用,如生物和化学试剂失败,受益于Al /金属复合材料,易于点燃和燃烧长持续时间。当Al在低温下用第二金属混合时,启用点火以形成具有大,放热热释放的金属间化合物。放热反应显着降低了点火阈值,使粉末的温度升高,即使在大粉末中也能够长时间燃烧。本文探讨了化学成分和合成条件对所得微观结构的影响和Al / Zr复合粉末的点火。粉末通过使用两个球的反应球铣削(臂)捕获到粉末质量比(BPR)5和10,其中铣削时间为1小时。在这里,我们报告了六种不同组合物的AS-MICRED,组合粉末的尺寸,微观结构和反应性质:Al:3 Zr,2al:3Zr,Al:Zr,3al:2Zr,3al:Zr和4al:Zr。富含氧化物的富含型和富含铝粉的粉末通常大于接近1:1化学计量比的化学物质的粉末,并且BPR 10粉末始终小于BPR 5粉末。颗粒内部由Al基质中的Zr夹杂物组成,具有较大的Zr夹杂物,可用于更丰富的富含铝化学和BPR 5样品。 X射线衍射数据表明AS-MICRED富含AL的化学性和BPR 5样品也具有较少的Al和Zr的混合。测量最低点火温度(639 k +/- 15 k和646 k +/- 18k),分别测量BPR 5 3Al:2Zr和Al:Zr粉末,并与较大的Al-Zr形成反应的热量相关通过差分热分析测量。虽然在所有粉末中引发了金属间反应,但对于两种最富含铝的组合物,未使能燃烧。讨论了影响Al / Zr基复合粉末中放热反应点火的因素。 (c)2018 Elsevier B.v.保留所有权利。

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