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Particle Track and Trace during Membrane Filtration by Direct Observation with a High Speed Camera

机译:通过高速相机直接观察膜过滤过程中的颗粒轨迹和痕迹

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摘要

A methodology was developed for direct observation and analysis of particle movements near a microfiltration membrane. A high speed camera (1196 frames per second) was mounted on a microscope to record a hollow fiber membrane in a filtration cell with a transparent wall. Filtrations were conducted at varying pressure and crossflow velocities using synthetic core–shell particles (diameter 1.6 μm) of no and high negative surface charge. MATLAB scripts were developed to track the particle positions and calculate velocities of particle movements across and towards the membrane surface. Data showed that the velocity of particles along the membrane increases with distance from the membrane surface which correlates well with a fluid velocity profile obtained from CFD modelling. Particle track and trace was used to calculate the particle count profiles towards the membrane and document a higher concentration of particles near the membrane surface than in the bulk. Calculation of particle velocity towards and away from the membrane showed a region within 3–80 μm from the membrane surface with particle velocities higher than expected from the velocity of water through the membrane, thus the permeation drag underpredicts the actual velocity of particles towards the membrane. Near the membrane, particle velocities shift direction and move away. This is not described in classical filtration theory, but it has been speculated that this is an effect of particle rotation or due to membrane vibration or change in flow pattern close to the membrane.
机译:开发了用于直接观察和分析微滤膜附近颗粒运动的方法。将高速照相机(每秒1196帧)安装在显微镜上,以在带有透明壁的过滤池中记录中空纤维膜。使用合成的无核表面负电荷的核-壳颗粒(直径1.6μm)以不同的压力和错流速度进行过滤。开发了MATLAB脚本来跟踪粒子位置并计算粒子在整个膜表面上的移动速度。数据显示,沿着膜的颗粒速度随与膜表面的距离的增加而增加,这与从CFD模型获得的流体速度分布密切相关。粒子跟踪和痕迹用于计算朝向膜的粒子计数曲线,并记录在膜表面附近的粒子浓度高于散装粒子。粒子进出膜的速度计算显示,离膜表面3–80μm范围内的区域的粒子速度高于通过膜的水的速度,因此渗透阻力低估了粒子向膜的实际速度。在膜附近,粒子速度改变方向并移开。在经典的过滤理论中没有对此进行描述,但是据推测这是颗粒旋转的影响,或者是由于膜振动或靠近膜的流型变化所致。

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