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Modeling the Diffusion to Kinetically Controlled Burning Transition of Micron-Sized Aluminum Particles

机译:模拟微米级铝颗粒的扩散到动力学控制的燃烧转变

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Aluminum particle burn rates are known to be a strong function of particle size as the mode of burning transitions from diffusion to kinetically controlled. To better understand the rate dependent diffusion and kinetic processes, a fully compressible, one-dimensional, spherically symmetric particle burn model is developed. Several cases are studied to explore the burning of aluminum particles in air, carbon-dioxide and steam environments. Predictions of burn rates versus particle size reveal significant deviations from a diffusion controlled burning limit - highlighting the importance of accounting for finite-rate chemistry in modeling the burning of sub-micron aluminum particles. While overall agreement to data is satisfactory, the detailed model cannot be directly used in system level tools due to computational cost. A reduced modeling strategies are therefore explored to account for finite-rate chemistry effects in simpler models for use in system level CFD analysis. An augmented D~2 - law where the finite-rate chemistry is treated as a perturbation to flame sheet approximation via augmented burn rate "constants". Predictions using this approach of deflagration speeds in dusty aluminum-air gases agree well with experiments and show evidence of a maximum flame speed for a given mass loading.
机译:已知铝颗粒的燃烧速率是颗粒大小的强函数,因为燃烧的模式从扩散过渡到动力学控制。为了更好地了解速率相关的扩散和动力学过程,开发了一种完全可压缩的一维球形对称粒子燃烧模型。研究了几种情况,以探索铝颗粒在空气,二氧化碳和蒸汽环境中的燃烧。燃烧速率与粒度的关系预测表明,与扩散控制的燃烧极限存在显着差异-突出了在模拟亚微米铝颗粒燃烧中考虑有限速率化学的重要性。虽然对数据的总体协议令人满意,但由于计算成本高昂,无法在系统级工具中直接使用详细模型。因此,探索了一种简化的建模策略,以在用于系统级CFD分析的更简单模型中解决有限速率化学效应。增强的D_2-定律,其中有限速率化学被视为通过增大的燃烧速率“常数”对火焰片近似的扰动。使用这种在尘土飞扬的铝空气中爆燃速度的方法进行的预测与实验非常吻合,并显示了在给定质量负载下最大火焰速度的证据。

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