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Mathematical modeling of and parametric studies on flue gas recirculation iron ore sintering

机译:烟气再循环铁矿石烧结的数学建模及参数研究

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摘要

A relatively more comprehensive 1D mathematical model, compared to previous models, is proposed for flue gas recirculation sintering (FGRS). The proposed model considers multiphase theory, eight major reactions significantly affected by the input gas conditions, and various heat transfer processes within/between different solid and gas phases. Characteristic size distributions of materials including coke, limestone and dolomite are used to correct the reaction rates of key sub-models, as well as specific kinetic parameters determined via thermogravimetric analysis instead of empirical values. Geometric changes caused by the reactive and melting factors are described in improved manners. This model is validated by contrasting the modeling results and the measured data from sinter pot tests. Parametric studies show FGRS technology can significantly enhance combustion characteristic within sinter bed, meaning to increase maximum temperature and melt fraction, improve the uneven distribution of heat. Therefore, the quality of sintered ore can be improved. However, the slightly reduced flame front speed deserves further attention. The velocity of input flue gas exerts the most significant effect, followed by O-2 concentration, and then, temperature. The operating parameters of FGRS must be carefully determined. Three measures, which still require further investigations, can be proposed to optimize the process. (C) 2016 Elsevier Ltd. All rights reserved.
机译:与以前的模型相比,提出了一种相对更全面的一维数学模型,用于烟气再循环烧结(FGRS)。所提出的模型考虑了多相理论,受输入气体条件显着影响的八个主要反应以及不同固相和气相之间/之间的各种传热过程。包括焦炭,石灰石和白云石在内的材料的特征尺寸分布可用于校正关键子模型的反应速率,以及通过热重分析而非经验值确定的特定动力学参数。由反应和熔化因子引起的几何变化以改进的方式描述。通过对比建模结果和烧结锅测试的测量数据来验证该模型。参数研究表明,FGRS技术可以显着提高烧结床内的燃烧特性,这意味着可以提高最高温度和熔体分数,改善热量的不均匀分布。因此,可以提高烧结矿的质量。但是,稍微降低的火焰前移速度值得进一步关注。输入烟气的速度影响最大,其次是O-2浓度,然后是温度。 FGRS的运行参数必须仔细确定。可以提出三种仍需进一步研究的措施来优化过程。 (C)2016 Elsevier Ltd.保留所有权利。

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