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Maximizing bubble segregation at high liquid fluxes

机译:在高液体通量下最大化气泡分离

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This study is concerned with a common class of problem involving two phase separation of a dispersed gas flow from a continuous liquid flow under extreme processing conditions. Relatively fine spherical bubbles of order 500 μm were generated in the presence of a surfactant under a high shear rate within a rectangular, multi-channeled, cuboidal downcomer. Liquid fluxes, as high as 176 cm/s through each channel of the downcomer, sheared bubbles from a sintered surface mounted flush to the channel wall before disengaging the downcomer flow into a vertical vessel. Both high feed fluxes, up to 15 cm/s, and high gas fluxes, up to 5.5 cm/s, ensured a high gas holdup beneath the downcomer and the hindered rising of the bubbles. Enhanced bubble-liquid segregation was achieved using an arrangement of parallel inclined channels incorporated below the main vertical chamber. This novel device, referred to as the Reflux Flotation Cell, prevented the entrainment of bubbles to the underflow, and significantly reduced the liquid flux to overflow, even in the absence of a conventional froth zone. Extreme upward bubble surface fluxes of up to 600 s~(-1) were achieved, while counter-current downward liquid fluxes reached 14.4 cm/s, arguably four times the bubble terminal rise velocity. Hence successful phase separation was achieved while operating well beyond the so-called flooding condition arising from extreme levels of gas and feed fluxes. This hydrodynamic arrangement should find application in increasing surfactant extraction rates in foam fractionation and ion flotation, gas absorption, and even particulate flotation.
机译:这项研究涉及一类常见的问题,涉及在极端加工条件下将分散气体流与连续液体流进行两相分离。在表面活性剂的存在下,在矩形,多通道,立方形降液管中,在高剪切速率下产生了相对较小的500μm球形气泡。通过降液管的每个通道的液流量高达176 cm / s,在将降液管流入垂直容器之前,从安装在与通道壁齐平的烧结表面上剪切出气泡。高达15 cm / s的高进料通量和高达5.5 cm / s的高气体通量都确保了降液管下方的高气体滞留量,并阻止了气泡的上升。使用在主垂直腔室下方并入的平行倾斜通道的布置可实现增强的气泡-液体分离。这种新颖的装置,称为回流浮选池,即使在没有常规泡沫区的情况下,也可以防止气泡夹带到底流,并显着减少液体通量溢出。极高的气泡表面通量达到600 s〜(-1),而逆流的向下液体通量达到14.4 cm / s,可以说是气泡末端上升速度的四倍。因此,成功地进行了相分离,同时远远超出了由气体和进料通量的极高水平引起的所谓溢流条件。这种流体动力装置应可用于提高泡沫分馏和离子浮选,气体吸收甚至颗粒浮选中表面活性剂的萃取率。

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