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COMBUSTION OF MECHANICALLY ALLOYED Al·Mg POWDERS IN PRODUCTS OF A HYDROCARBON FLAME

机译:机械合金化的Al·Mg粉末在烃类火焰中的燃烧

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Burn times and temperatures were measured optically for a set of mechanically alloyed Al center dot Mg powders injected into a laminar and a turbulent air-acetylene flame. Magnesium concentrations varied from 10 to 53 mole%; particle sizes were in the range of 1-50 mu m. Emission from the burning particles at 700 nm, 800 nm, and 900 nm was captured using three filtered photomultiplier tubes. The burn times were correlated with particle sizes using measured statistical distributions for both times and sizes. The measured trends for burn times, t, as a function of particle size, d, for all alloys were approximated by a t = a center dot d(n) law, where the exponent n varied from 0.6 to 1. Shorter burn times were measured in more turbulent flows; respectively, the values of pre-exponent, a, decreased and exponent, n, increased slightly with an increased level of turbulence. An increase in Mg concentration led to longer burn times for the alloy particles for all flame conditions. For all compositions, alloy particles burned longer than similarly sized Al particles except for the alloy with the smallest concentration of Mg, Al0.9Mg0.1, for which particles less than similar to 4 mu m burned faster than similarly sized Al. This effect was observed for laminar and turbulent flames. The optically measured temperatures were lower for Al0.47Mg0.53 alloy (similar to 2400 K) compared to similar to 2700-2800 K obtained for other alloys. Turbulent mixing resulted in a slight increase in the measured temperature.
机译:对注入到层流和湍动的乙炔空气中的一组机械合金化的Al中心点Mg粉末,光学测量了燃烧时间和温度。镁的浓度从10到53摩尔%不等;颗粒尺寸在1-50μm的范围内。使用三个过滤的光电倍增管捕获700 nm,800 nm和900 nm处燃烧颗粒的发射。使用测量的时间和尺寸统计分布,将燃烧时间与颗粒尺寸关联起来。所有合金的燃烧时间t随颗粒尺寸d的变化趋势的测量趋势近似为at =中心点d(n)律,其中指数n在0.6到1之间变化。在湍流中;随着湍流水平的增加,前指数a的值减小,而指数n的值略有增加。 Mg浓度的增加导致在所有火焰条件下合金颗粒的燃烧时间更长。对于所有成分,合金颗粒的燃烧时间均比类似尺寸的Al颗粒长,但Mg浓度最低的合金Al0.9Mg0.1除外,其中小于4微米的颗粒比类似尺寸的Al燃烧得更快。对于层流和湍流火焰观察到了这种效果。与其他合金获得的2700-2800 K相比,Al0.47Mg0.53合金的光学测量温度更低(类似于2400 K)。湍流混合导致测量温度略有升高。

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