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首页> 外文期刊>International journal of energetic materials and chemical propulsion >ON GAS RELEASE BY THERMALLY-INITIATED FULLY-DENSE 2Al·3CuO NANOCOMPOSITE POWDER
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ON GAS RELEASE BY THERMALLY-INITIATED FULLY-DENSE 2Al·3CuO NANOCOMPOSITE POWDER

机译:热致密化2Al·3CuO纳米复合粉体的放气研究

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A recently developed model for low-temperature exothermic reactions in nanocomposite Al-CuO thermites described the evolution of an alumina layer growing between Al and CuO and changes in its diffusion resistance as critically affecting ignition of the composite reactive material. The model was successful in describing ignition of individual composite particles in a CO_2 laser beam. However, it was unable to conclusively predict ignition of the same powder particles coated onto an electrically heated filament. In this work, ignition of fully-dense 2Al·3CuO nanocomposite powder prepared by arrested reactive milling was studied using a modified electrically heated filament experiment, located in a miniature vacuum chamber. Thin layers of the powders coated on a nickel-chromium filament were ignited at heating rates between 200 and 16,000 K/s. The ignition was accompanied by both optical emission and pressure signals. The pressure signals occurred before emission, with increasing delay at higher heating rates. Ignition temperatures were only slightly affected by the heating rate. The results are interpreted proposing that the low-temperature redox reaction produces a metastable CuO_(1-x) phase with 0 < x ≤1 which releases oxygen upon heating. It is shown that despite a relatively small heat release, the low-temperature reactions in nanocomposite thermites are important as producing destabilized, partially reduced oxides that decompose with gas release upon heating. In the present experiments, the gas release changed thermal properties of the powder coating, reducing the efficiency of heat exchange with the supporting filament and thus enabling its thermal runaway and ignition.
机译:纳米复合Al-CuO铝热剂中低温放热反应的最新开发模型描述了在Al和CuO之间生长的氧化铝层的演变以及其扩散阻力的变化,严重影响了复合反应材料的着火。该模型成功地描述了CO_2激光束中单个复合颗粒的点火。然而,它不能最终预测涂覆在电加热丝上的相同粉末颗粒的着火情况。在这项工作中,使用改进的电加热灯丝实验(位于微型真空室中)研究了通过停滞反应研磨制备的高密度2Al·3CuO纳米复合粉末的点火。以200至16,000 K / s的加热速率点燃涂覆在镍铬细丝上的粉末薄层。点火同时伴有光发射和压力信号。压力信号在排放之前发生,在较高的加热速率下延迟增加。点火温度仅受加热速率的轻微影响。结果被解释为表明低温氧化还原反应会产生亚稳态的CuO_(1-x)相,其中0

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