Experiments and simulations on a cold-flow blast furnace hearth model

Q1 Engineering
Chemical Engineering Science: X Pub Date : 2022-02-01 Epub Date: 2022-02-07 DOI:10.1016/j.cesx.2022.100120
Tim M.J. Nijssen , Indy Hoeks , Vishwanath Manjunath , Hans A.M. Kuipers , Jan van der Stel , Allert T. Adema , Kay A. Buist
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引用次数: 1

Abstract

The blast furnace hearth plays an important role in the operational stability and lifetime of the reactor. The quasi-stagnant bed of coke particles termed the deadman undergoes complex interaction with the flowing hot metal, and remains largely ill-understood. In this work, a cold model blast furnace hearth is presented, and studied using both numerical and experimental techniques. Magnetic Particle Tracking (MPT) is used to investigate the individual particle behaviour within the cylindrical, opaque bed. At high liquid holdup, the particle bed was found to alternate between floating and sitting states, following the liquid level during the tapping and filling cycle. This bed motion was found to induce a migration of particles, thereby slowly renewing the deadman. The rate of horizontal migration increases with the vertical bed amplitude, and the renewal of particles is concentrated around the opening of the tap hole. No direct influence of the coke-free space on the tapping rate was found in these experiments. Instead, the disturbance of the packing in front of the tap hole was observed to lead to a higher tapping rate. Additionally, a coupled numerical framework is presented, in which Computational Fluid Dynamics (CFD), the Volume of Fluid (VOF) method and the Discrete Element Method (DEM) are combined. A simulation set-up is presented which closely replicates the experimental conditions. The position and movement of the floating bed are found to be well-predicted by the VOF/CFD-DEM model. Particle trajectories are presented, and migration of particles within the deadman is observed. Alongside the particle motion, the liquid flow pattern during draining of the vessel is visualised. It is concluded that a coke-free space underneath the deadman significantly impacts the shape of the liquid flow pattern, which affects the erosion processes within the blast furnace hearth.

冷流高炉炉底模型的实验与仿真
高炉炉底对反应器的运行稳定性和寿命起着重要的作用。被称为死人的焦颗粒的准停滞床与流动的热金属发生复杂的相互作用,并且在很大程度上仍然不为人所知。本文提出了一种冷态高炉炉底模型,并用数值和实验方法对其进行了研究。磁颗粒跟踪(MPT)用于研究圆柱形不透明床内单个颗粒的行为。在高含液率时,发现颗粒床在浮动和静止状态之间交替,在攻丝和填充周期中跟随液位。这种床层运动被发现会引起粒子的迁移,从而慢慢地使死人复活。水平运移速率随垂向床层振幅增大而增大,颗粒的更新主要集中在出料孔开口附近。在这些实验中没有发现无焦空间对出丝率有直接的影响。相反,观察到在攻丝孔前填料的扰动导致更高的攻丝速率。此外,提出了计算流体力学(CFD)、流体体积法(VOF)和离散元法(DEM)相结合的耦合数值框架。提出了一种与实验条件基本一致的模拟装置。VOF/CFD-DEM模型可以很好地预测浮床的位置和运动。给出了粒子的运动轨迹,并观察了粒子在死区内的迁移。除了粒子运动外,还可以看到容器排水过程中的液体流动模式。结果表明,炉膛下的无焦空间显著影响了液体流型的形状,从而影响了高炉炉底的侵蚀过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Chemical Engineering Science: X
Chemical Engineering Science: X Engineering-Industrial and Manufacturing Engineering
CiteScore
11.30
自引率
0.00%
发文量
2
审稿时长
25 weeks
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