Patricia Barral, Luis Javier Pérez-Poré
A transient 3D CFD model is solved to investigate the features of the complex flow in a blast furnace trough. Hot metal, slag, and air are considered as different phases of the flow. The influence of various-taphole stream conditions on the hydrodynamics in the trough is examined, such as different slag-hat metal ratios, taphole diameters, and stream velocities. The special case of a dry trough during its first tapping is also addressed. Attention is devoted to the characterization of the wall shear stress, closely related to mechanical erosion, and to the evolution of the interfaces separating the fluid phases. Interfacial flow patterns, characterized by large recirculations and return currents of slag and hot metal, are observed. The simultaneous tapping of slag and hot metal leads to distinct flow features, deviating from the initial stage, when only hot metal is drained, as well as lower shear stresses, up to 31% less with increasing slag content in the taphole stream. Slag and hot metal levels in the trough evolve rapidly to quasi-steady states. Although the influence of the taphole stream velocity and diameter have a modest impact on the free surface dynamics, variations in the taphole slag fraction lead to significant fluctuations in the depth of slag and hot metal pools in the trough.
@article{60c87e24-0901-4f41-b2e9-6158154ccee4,
title={2024 Blast Furnace Main Trough Hydrodynamics},
author={Patricia Barral and Luis Javier Pérez-Poré},
year={2026},
language={en}
}TY - JOUR TI - 2024 Blast Furnace Main Trough Hydrodynamics AU - Patricia Barral AU - Luis Javier Pérez-Poré PY - 2026 LA - en ER -
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