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Simulation and Validation of multiphase flows in gas stirred vessels

机译:气体搅拌容器中多相流的仿真与验证

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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:浮力流由于BOF容器内的氧气注入动力学是非常复杂的。它涉及在高温下的钢液池内部的可压缩氧气射流的膨胀。当地的湍流混合提供高速率和快速动力学优先氧化导致快速脱碳。作为第一步,这项工作示出了在容器中模拟氧气注入浴的等温,非反应流体力学计算流体动力学(CFD)的应用。以下过,谷和铁杆,2000 [1]所述的高马赫数可压缩氧气射流被近似具有相对较高密度的等效射流的动量相同较低速度使realizably大瞬态时间的步骤。所用的方法是在实施FLUENT瞬态体积-OF-流体算法成功地捕获“膨化”现象。作为喷射继续时,被困低于钢液的重质和截留气体的质量超过临界极限的气体停留,它爆炸通过钢液的池。重复此过程中的时间。同时它允许良好的混合,它也是通过容器的喉部容易发生过程不稳定性和火焰泄漏超时。这项研究表明,CFD成功地分析这些喷的可能性,频率和幅度。

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