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Development of Flow Field and Temperature Distribution during Changing Divergent Angle of the Nozzle When Using Swirl Flow in a Square Continuous Casting Billet Mould

机译:方形连铸坯结晶器内旋流作用下喷嘴发散角变化时流场和温度分布的变化

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Recently, positive effects of swirl flow have been investigated, related to specific billet moulds with particular divergent angles in the immersion nozzles. Literature review showed that a systematic study of changes in the divergent angle in the immersion nozzle for continuous casting moulds had not been carried out. Therefore, in the present work we aim to investigate the development of flow field and temperature distribution inside the mould and on the meniscus while changing the divergent angle of the immersion nozzle. Swirl flow was used in the nozzle and the liquid entered a 3D square billet mould. Both physical and mathematical modelling was carried out to simulate nine different divergent angles between 0 and 160°. The overall results of the study showed that a change in divergent angle has an effect on the flow pattern as well as the temperature distribution of the liquid steel in the mould. More specifically it was found that in the case of 100° divergent angle nozzle billet we can observe a major shift of lower circulation compared to that of the 80° nozzle billet. Furthermore, a noticeable increase of the temperature near the meniscus, for a square billet, and radial velocity component, for a round billet, was found when using the 100° divergent angle nozzle compared to the 80° divergent angle nozzle. Additionally, a uniform velocity and heat distribution was observed within a distance of 200 mm below the nozzle exit for nozzle outlets with 100° divergent angles and larger.
机译:最近,已经研究了旋流的积极影响,这与浸入式喷嘴中具有特定发散角的特定钢坯模具有关。文献综述表明,尚未对连铸结晶器浸入式喷嘴中发散角的变化进行系统的研究。因此,在目前的工作中,我们旨在研究在改变浸没喷嘴的发散角的同时,在模具内部和弯月面上的流场和温度分布的变化。喷嘴中使用旋流,液体进入3D方坯模具。进行了物理和数学建模,以模拟0到160°之间的9个不同的发散角。研究的总体结果表明,发散角的变化对结晶器中钢水的流动方式以及温度分布都有影响。更具体地,发现在100°发散角喷嘴坯料的情况下,与80°喷嘴坯料相比,我们可以观察到较低循环的主要偏移。此外,与使用80°发散角喷嘴相比,使用100°发散角喷嘴时,对于方坯,弯月面附近的温度明显升高,而对于圆坯,径向速度分量显着增加。此外,对于喷嘴出口(发散角为100°和更大),在喷嘴出口下方200毫米的距离内观察到均匀的速度和热量分布。

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