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Computational Fluid Dynamics Modelingof Combustion Characteristics of a CH4/O2 Combustorin a Copper Anode Furnace

机译:计算流体动力学建模CH4 / O2燃烧器的燃烧特性研究在铜阳极炉中

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摘要

With the rapid depletion of high-yield copper mineral resources and the accumulation of secondary copper resources, the recycling of secondary copper is gaining popularity in the copper industry. A copper anode furnace, often used in copper recycling, usually relies on methane combustion to melt copper scraps. In this work, a computational fluid dynamics (CFD) model of pure oxy-methane combustion is established to investigate the combustion characteristics of the CH4/O2 combustor in the copper anode furnace. The model is validated by comparing the simulation results with experimental measurements. The effects on flame length and temperature distribution are investigated under various fuel velocities, oxidizer velocities, and oxidizer temperatures. The results indicate that flame length and temperature distribution increase as the fuel velocity and oxidizer temperature increase, and decrease with the increase in oxidizer velocity. The flame length and temperature distribution always show an increasing trend with the increasing equivalence ratio. Based on the recycling capacity of the copper anode furnace, this validated CFD model can be usedto optimize the operation parameters for controlling flame lengthand temperature distribution.
机译:随着高产铜矿资源的迅速枯竭和次级铜资源的积累,次级铜的回收利用在铜工业中越来越受欢迎。常用于铜回收的铜阳极炉通常依靠甲烷燃烧来熔化废铜。在这项工作中,建立了纯氧甲烷燃烧的计算流体动力学(CFD)模型,以研究CH4 / O2燃烧器在铜阳极炉中的燃烧特性。通过将仿真结果与实验测量值进行比较来验证模型。在各种燃料速度,氧化剂速度和氧化剂温度下,研究了对火焰长度和温度分布的影响。结果表明,火焰长度和温度分布随着燃料速​​度和氧化剂温度的升高而增加,并随着氧化剂速度的增加而降低。随着当量比的增加,火焰的长度和温度分布总是呈现出增加的趋势。根据铜阳极炉的回收能力,可以使用经过验证的CFD模型优化用于控制火焰长度的操作参数和温度分布。

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