Department of Mechanical Engineering, Iran University of Science and Technology, Combustion Research Laboratory, Narmak, Hangam St., Tehran, Iran.
J Hazard Mater. 2010 Apr 15;176(1-3):146-53. doi: 10.1016/j.jhazmat.2009.10.130. Epub 2009 Nov 10.
In this study, an attempt has been made to analytically investigate the concentration and velocity profiles of particles across flame propagation through a micro-iron dust cloud. In the first step, Lagrangian particle equation of motion during upward flame propagation in a vertical duct is employed and then forces acting upon the particle, such as thermophoretic force (resulted from the temperature gradient), gravitation and buoyancy are introduced; and consequently, the velocity profile as a function of the distance from the leading edge of the combustion zone is extracted. In the resumption, a control volume above the leading edge of the combustion zone is considered and the change in the particle number density in this control volume is obtained via the balance of particle mass fluxes passing through it. This study explains that the particle concentration at the leading edge of the combustion zone is more than the particle agglomeration in a distance far from the flame front. This increase in the particle aggregation above the combustion zone has a remarkable effect on the lower flammability limits of combustible particle cloud. It is worth noticing that the velocity and particle concentration profiles show a reasonable compatibility with the experimental data.
在本研究中,尝试通过分析来研究火焰在微铁粉尘云中传播时的颗粒浓度和速度分布。在第一步中,采用了向上传播的垂直管道中火焰的拉格朗日颗粒运动方程,然后引入了作用于颗粒的力,如由温度梯度引起的热泳力、重力和浮力;从而提取出速度分布作为燃烧区前缘距离的函数。在续集中,考虑燃烧区前缘上方的控制体积,并通过通过它的颗粒质量通量的平衡来获得该控制体积中颗粒数密度的变化。本研究表明,在燃烧区前缘处的颗粒浓度高于远离火焰前缘的颗粒团聚物的浓度。在燃烧区上方颗粒聚集的增加对可燃颗粒云的下限可燃性有显著影响。值得注意的是,速度和颗粒浓度分布与实验数据具有合理的一致性。