【24h】

Simulation and Validation of multiphase flows in gas stirred vessels

机译:气体搅拌容器中多相流的模拟与验证

获取原文

摘要

The dynamics of buoyant flow due to oxygen injection inside a BOF vessel is very complex. It involves expansion of a compressible oxygen jet inside the liquid steel pool at high temperature. The local turbulence provides high rate of mixing and fast kinetics for preferential oxidation leading to rapid decarburization. As a first step, this work illustrates application of Computational Fluid Dynamics (CFD) in simulating the isothermal, non-reacting hydrodynamics of the oxygen-injected bath in the vessel. Following Guo, Gu and Irons, 2000[1], the high Mach number compressible oxygen jet is approximated with an equivalent jet of relatively higher density, lower velocity of same momentum to enable realizably big transient time steps. The method used is a transient Volume-Of-Fluid algorithm implemented in FLUENT that is successful in capturing the 'puffing' phenomenon. As the injection is continued, the gas stays trapped below a heavy mass of liquid steel and as the mass of trapped gas exceeds a critical limit, it explodes through the pool of liquid steel. This process repeats in time. While it allows good mixing, it is also prone to process instabilities and flame leak outs through the throat of the vessel. This study shows that CFD is successful in analyzing the possibilities, frequency and magnitude of such puffs.
机译:BOF容器内注入氧气引起的浮力流动的动力学非常复杂。它涉及高温下液态钢池内部的可压缩氧气射流的膨胀。局部湍流提供了高混合速率和快速动力学,可进行优先氧化,从而导致快速脱碳。第一步,这项工作说明了计算流体动力学(CFD)在模拟容器中注氧浴的等温,非反应流体动力学中的应用。继Guo,Gu和Irons,2000年[1]之后,高马赫数可压缩氧气射流被近似为密度相对较高,动量较低的等效射流的等效射流,以实现可实现的大瞬态时间步长。所使用的方法是在FLUENT中实现的瞬时流体体积算法,该算法成功捕获了“膨化”现象。随着注入的继续,气体会滞留在重钢液以下,并且当滞留气体的质量超过临界极限时,气体会通过钢液池爆炸。此过程会及时重复。虽然它可以实现良好的混合,但它也容易产生工艺不稳定,并且火焰会从容器的喉部泄漏出去。这项研究表明,CFD成功地分析了此类抽吸的可能性,频率和幅度。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号