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Mathematical Model of Solid Flow Behavior in a Real Dimension Blast Furnace

机译:实尺寸高炉中固体流动行为的数学模型

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摘要

A mathematical model based on the continuum mechanic concept has been developed to describe the profile of solid particles in an industrial scale blast furnace with respect to the in-furnace conditions and its characteristics such as the shape and size of the deadman. The Navier-Stokes differential equation for multi-phase multi-dimensional space has been used to describe the behavior of existing phases. The surface stress tensor has been defined as an extra term and added to the Navier-Stokes equation to describe the particle-particle interactions. This extra term in the Navier-Stokes equation behave as a breaking force when the particles are sliding down. It is shown that the particles change their profile from a V-shape to a W-shape due to the characteristics of the deadman. Moreover, the velocity magnitude is higher at the outer surface of the deadman for higher grid-slabs in this region than the near-wall cells. However, the situation changes as solid particles moving to even lower level of grid-slabs at the outer surface of the deadman in comparison to near-wall cells. It has also been shown that an increase in the magnitude of the effective pressure reduces the velocity magnitude of descending particles.
机译:已经开发了基于连续力学原理的数学模型,以描述工业规模高炉中固体颗粒相对于炉内条件及其特征(例如死亡者的形状和大小)的分布。用于多相多维空间的Navier-Stokes微分方程已用于描述现有相的行为。表面应力张量已被定义为一个附加项,并已添加到Navier-Stokes方程中以描述颗粒间的相互作用。当粒子向下滑动时,Navier-Stokes方程中的这一额外项会表现为断裂力。结果表明,由于死角的特性,粒子的轮廓从V形变为W形。此外,对于该区域中较高的网格平板,在死人的外表面处的速度幅度要比近壁单元更高。然而,情况发生了变化,因为与近壁单元相比,固体粒子在死人的外表面移动到更低水平的网格板。还已经表明,有效压力大小的增加减小了下降颗粒的速度大小。

著录项

  • 来源
    《ISIJ international》 |2013年第6期|979-987|共9页
  • 作者单位

    KTH Royal Institute of Technology, Division of Applied Process Metallurgy, Department of Material Science and Engineering, Stockholm, Sweden ,Swerea MEFOS AB, Division of Casting and Flow Simulation, Department of Process Metallurgy, SE 974 37 Lulea.;

    KTH Royal Institute of Technology, Division of Applied Process Metallurgy, Department of Material Science and Engineering, Stockholm, Sweden;

    KTH Royal Institute of Technology, Division of Applied Process Metallurgy, Department of Material Science and Engineering, Stockholm, Sweden ,FOI, Swedish Defence Research Agency, Division of CBRN Defence and Security, SE-901 82 Umea;

    KTH Royal Institute of Technology, Division of Applied Process Metallurgy, Department of Material Science and Engineering, Stockholm, Sweden;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    mathematical modeling; blastfurnace; solid flow; Navier-Stokes equation; surface stress tensor; effective pressure;

    机译:数学建模;高炉固体流量Navier-Stokes方程;表面应力张量有效压力;
  • 入库时间 2022-08-18 00:00:17

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