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Self ignition of layers of metal powder mixtures

机译:金属粉末混合物层的自燃

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The availability of models that predict the thermal stability and spontaneous ignition of metal powders is of great importance to the nuclear industry and powder handling systems in general. The present paper describes the application of a previously published two-dimensional axisymmetric model to the ignition characteristics of zirconium (Zr), tantalum (Ta) and Zr/Ta deposits on a hot surface. Their minimum ignition temperatures and oxidation behavior were investigated by validating the model against extensive experimental data. A nonlinear increase of the minimum ignition temperature was observed for Zr/Ta layers as a function of Zr content. The more reactive material, Zr, determines the thermal sensitivity of Zr/Ta mixtures, even when the Zr content is as low as 30 wt%. The model successfully predicts the ignition sensitivity of such mixtures with average deviations of ± 4% for Ta loads amounting to less than 80 wt.%. Three main aspects have been highlighted by SEM observations and XRD analyses: i) the diffusion of oxygen through the upper layers is the rate limiting step of the combustion reaction, ii) mechanical stresses are important for tantalum oxide layers and modify oxygen diffusion, and iii) due to lack of oxygen at the bottom of dust deposits, nitration reactions occur.
机译:预测金属粉末的热稳定性和自燃性的模型的可用性对于整个核工业和粉末处理系统都非常重要。本文描述了先前公开的二维轴对称模型在高温表面上的锆(Zr),钽(Ta)和Zr / Ta沉积物着火特性的应用。通过针对大量实验数据验证模型,研究了其最低着火温度和氧化行为。 Zr / Ta层的最低点火温度随Zr含量的变化呈非线性增长。反应性更高的材料Zr决定Zr / Ta混合物的热敏性,即使Zr含量低至30 wt%。该模型成功地预测了此类混合物的着火敏感性,对于Ta负载小于80 wt。%的平均偏差为±4%。 SEM观察和XRD分析突出了三个主要方面:i)氧气通过上层的扩散是燃烧反应的速率限制步骤; ii)机械应力对于氧化钽层和改变氧气扩散很重要,并且iii )由于粉尘沉积物底部缺少氧气,因此会发生硝化反应。

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