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Intensification Of Bubble Disintegration And Dispersion By Mechanical Stirring In Gas Injection Refining

机译:在注气精炼中通过机械搅拌增强气泡的崩解和扩散

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Water model experiments were performed for establishing highly efficient gas injection refining processes. Mechanical stirring was applied to disintegrate the injected bubbles and to disperse them widely in the bath. The bubble disintegration and dispersion were investigated by changing rotation mode (direction of rotation), rotation speed, blade size of the impeller and gas flow rate. Forward rotation of the impeller induced a stable tangential flow and could not disperse bubbles in the bath due to formation of a vortex around the impeller shaft. The tangential flow could be suppressed by forward-interrupt rotation, which could reduce the vortex formation to some degree. However, forward-interrupt rotation could not disperse the bubbles widely in the bath. Forward-reverse rotation could prevent the vortex formation completely and create a strong shear stress field, which intensified the bubble disintegration and dispersion in the bath. Higher impeller rotation speed and larger blade length in forward-reverse rotation could enhance the bubble disintegration and make the dispersed bubbles smaller. The bubble dispersion zone became wider with larger blade length. The bubble size tended to be larger at higher gas flow rates. However, its dependence on the gas flow rate became smaller at higher impeller rotation speed.
机译:进行水模型实验以建立高效的气体注入精制工艺。进行机械搅拌以使注入的气泡分解并使它们在浴中广泛分散。通过改变旋转方式(旋转方向),旋转速度,叶轮的叶片尺寸和气体流速来研究气泡的分解和分散。叶轮的正向旋转引起稳定的切向流,并且由于在叶轮轴周围形成涡流而无法将浴液中的气泡分散。切向流可以通过正向中断旋转来抑制,这可以在某种程度上减少涡流的形成。但是,正向中断旋转无法将气泡广泛分散到熔池中。前进-后退旋转可完全阻止涡流形成,并产生强大的切应力场,从而加剧气泡在浴中的分解和分散。较高的叶轮转速和正反转中的较大叶片长度可增强气泡的崩解并使分散的气泡更小。随着叶片长度的增加,气泡分散区变得更宽。在较高的气体流速下,气泡尺寸倾向于更大。然而,在较高的叶轮转速下,其对气体流速的依赖性变小。

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