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The influence of sample thickness on the combustion of Al:Zr and Al-8Mg:Zr nanolaminate foils

机译:样品厚度对Al:Zr和Al-8Mg:Zr纳米层压箔燃烧的影响

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Al:Zr and Al-8Mg:Zr nanocomposite foils do not combust completely in air because the penetration of oxygen and nitrogen into the foils can become limited as the product phases grow. The heat produced during the combustion of these foils could feasibly depend upon the volume fraction of the surface oxide layer that forms and therefore the initial foil thickness as well. To test this, Al:Zr and Al-8Mg:Zr foils of various thicknesses (9-61 pm) were fabricated by Physical Vapor Deposition and their heats of combustion were measured using bomb calorimetry in 1 atm of air. We found that combustion efficiency decreased significantly for Al:Zr foils as thickness increased, but Al-8Mg:Zr foils had a nearly constant combustion efficiency for the range of thicknesses studied. SEM-EDS measurements across the foil cross sections showed that for Al:Zr foils, a distinct oxide layer formed on the external surfaces and there were low levels of oxygen and nitrogen toward their centers. For Al-8Mg:Zr foils though, there was minimal dependence between heat output and foil thickness, the surface oxide layer was more diffuse, and the oxygen and nitrogen contents were higher throughout the foil. We propose that the addition of magnesium improves heat generation by increasing the rates of oxygen and nitrogen diffusion and thus enabling the formation of solid solutions that are richer in oxygen and nitrogen throughout the bulk of the foils. (C) 2018 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:Al:Zr和Al-8Mg:Zr纳米复合箔不能在空气中完全燃烧,因为随着产品相的增长,氧气和氮气向箔中的渗透会受到限制。这些箔片燃烧期间产生的热量可能取决于所形成的表面氧化物层的体积分数,因此也取决于初始箔片厚度。为了对此进行测试,通过物理气相沉积法制备了各种厚度(9-61 pm)的Al:Zr和Al-8Mg:Zr箔,并使用炸弹量热法在1个大气压的空气中测量了它们的燃烧热。我们发现,Al:Zr箔的燃烧效率随厚度的增加而显着降低,但是Al-8Mg:Zr箔在所研究的厚度范围内具有几乎恒定的燃烧效率。整个箔截面的SEM-EDS测量结果表明,对于Al:Zr箔,在其外表面形成了一层明显的氧化物层,并且朝向其中心的氧和氮含量较低。但是,对于Al-8Mg:Zr箔,热量输出与箔厚度之间的相关性最小,表面氧化物层更分散,整个箔中的氧和氮含量更高。我们提出,镁的添加通过增加氧气和氮气的扩散速率来改善热量的产生,从而使整个箔片中的氧气和氮气含量更高的固溶体得以形成。 (C)2018年燃烧研究所。由Elsevier Inc.出版。保留所有权利。

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