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A three-dimensional simulation of discrete combustion of randomly dispersed micron-aluminum particle dust cloud and applying genetic algorithm to obtain the flame front

机译:随机分散的微米级铝粉尘云离散燃烧的三维模拟及应用遗传算法获得火焰锋

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摘要

Discrete combustion of micron-sized aluminum particle dust cloud in air was investigated by a three-dimensional simulation. In light of presence of radiation and conduction heat transfer mechanisms, simulations became more realistic. Particles were randomly dispersed within a rectangular control volume using two different methods. An average flame front speed was obtained at each particle concentration using both methods. The second method yielded more accurate average flame front velocities. At lower dust concentrations, the results were in a good agreement with experimental outcomes. In the control volume composed of particles distributed using the second method, flame front was approximated with a fitted surface obtained via genetic algorithm. The temperature profiles of four random particles were plotted to provide insight into preheating time order of unburned particles. Later, the effect of particle diameters on flame front velocities was demonstrated. In the end, the flammability lean limit, as a significant parameter in safety issues, was calculated for different particle diameters. (C) 2017 Elsevier Ltd. All rights reserved.
机译:通过三维模拟研究了微米级铝粉尘云在空气中的离散燃烧。考虑到辐射和传导传热机制的存在,模拟变得更加现实。使用两种不同方法将颗粒随机分散在矩形控制体积内。使用两种方法在每种颗粒浓度下均获得了平均火焰前移速度。第二种方法产生更准确的平均火焰前沿速度。在较低的粉尘浓度下,结果与实验结果非常吻合。在由使用第二种方法分布的粒子组成的控制体积中,用通过遗传算法获得的拟合表面来近似火焰前锋。绘制了四个随机颗粒的温度曲线,以了解未燃烧颗粒的预热时间顺序。后来,论证了粒径对火焰前沿速度的影响。最后,针对不同粒径计算了可燃性稀薄极限,这是安全问题中的重要参数。 (C)2017 Elsevier Ltd.保留所有权利。

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