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Model analysis of gas residence time in an ironmaking blast furnace

机译:铁制造高炉中天然气停留时间模型分析

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Gas residence time distribution (RTD) is an effective and convenient indicator for evaluating the performance of complex multiphase chemical reactors including ironmaking blast furnaces (BFs). However, in the open literature, there lacks the systematic RTD research for BFs. In this study, an integrated mathematical model is developed for describing the gas RTD of a BF. The model combines a steady multi-fluid model for describing the in-furnace state of flow and thermo-chemical behavior of gas-solid-liquid phases and a transient model for describing the dynamic behavior of tracer materials. The results show that the gas flow field inside the BF is quite complex, resulting from many factors such as furnace geometry and coupled thermo-chemical behaviors of other phases. The tail of gas RTD curve resulted from the lagging phenomenon of tracer flow inside BFs, is captured. The gas RTD is discussed by using mean residence time, dispersion of molecules distribution, cumulative distribution function and residence time intensity function. Under the given BF conditions, mean residence time and space time of gas fluids are predicted as 13.5 s and 16.3 s, respectively. The existence of stagnant flow in the BF can be both derived and directly identified. Moreover, it is indicated the gas flow patterns in the BF are composed of piston-type flow, stagnant flow and limited mixing flow. This study provides a cost-effective tool for better understanding BF gas flow dynamics and optimizing BF operations. (C) 2019 Elsevier Ltd. All rights reserved.
机译:气体停留时间分布(RTD)是一种有效且方便的指标,用于评估包括炼铁高炉(BFS)的复杂多相化学反应器的性能。然而,在开放文献中,缺乏对BFS的系统RTD研究。在该研究中,开发了一种用于描述BF的气体RTD的集成数学模型。该模型结合了稳定的多流体模型,用于描述气体 - 固液相的流动和热化学行为的炉内状态和用于描述示踪材料动态行为的瞬态模型。结果表明,BF内的气体流场非常复杂,由诸如炉子几何形状和其他相耦合的热化学行为之类的因素产生非常复杂。捕获来自BFS内部示踪流的滞后现象的气体RTD曲线尾部。通过使用平均停留时间,分子分布,累积分布函数和停留时间强度函数的分散来讨论气体RTD。在给定的BF条件下,分别预测气体流体的平均停留时间和空间时间分别为13.5秒和16.3秒。 BF中的停滞流动的存在可以衍生和直接识别。此外,表示BF中的气体流动图案由活塞式流动,停滞流动和有限的混合流组成。本研究提供了一种成本效益的工具,可更好地理解BF气体流动动态和优化BF操作。 (c)2019年elestvier有限公司保留所有权利。

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