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首页> 外文期刊>Chemical Engineering Science >Particle flow in a hydrocyclone investigated by positron emission particle tracking
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Particle flow in a hydrocyclone investigated by positron emission particle tracking

机译:通过正电子发射粒子跟踪研究水力旋流器中的粒子流

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The flow of a particle through a hydrocyclone acting on water has been studied by positron emission particle tracking (PEPT). The positron-emitting radioactive tracer was 18F. It was found that the activity on an ion-exchange resin particle labeled with 18F did not leach out into the water during the duration of an experiment. In the state-of-the-art PET camera it is shown to be possible to locate the centroid of the tracer particle with a standard deviation of only about 0.2mm once per ms, making both the temporal and spatial resolution high enough to trace the particle in its very fast motion through the hydrocyclone. The design of the hydrocyclone was a modified Stairmand high-efficiency geometry with a long cone. The results are, among other things, shown as spatial tracks of the tracer particle as it moves through the hydrocyclone. Several interesting features were seen. The particle path, although the particle was much larger than the cut size of the cyclone, exhibited excursions into the inner, upwardly directed, part of the vortex giving rise to recirculatory loops. Moreover, at a particular position low in the cyclone, the particle exhibited a complicated flowpattern moving up and down repeatedly across this position. Careful analysis of the motion is presented, particularly of the motion low in the hydrocyclone, on basis of which it is made likely that this position represents the end of the vortex in the hydrocyclone.
机译:已通过正电子发射粒子跟踪(PEPT)研究了通过作用于水的水力旋流器的粒子流。发射正电子的放射性示踪剂为18F。发现在实验期间,对用18 F标记的离子交换树脂颗粒的活性没有浸出到水中。在最先进的PET相机中,已证明可以每秒仅一次以约0.2mm的标准偏差定位示踪剂粒子的质心,从而使时间和空间分辨率都足够高,以示踪。粒子以非常快的速度通过水力旋流器运动。水力旋流器的设计是带有长圆锥体的改进的Stairmand高效几何形状。除其他外,结果显示为示踪剂粒子在水力旋流器中移动时的空间轨迹。看到了几个有趣的功能。尽管粒子的直径比旋风分离器的切割尺寸大得多,但粒子的路径却出现了进入内部向上指向的涡旋部分的偏移,从而导致了循环回路。而且,在旋风分离器的低位的特定位置,颗粒表现出复杂的流型,并在该位置上反复上下移动。对运动进行了仔细的分析,特别是对水力旋流器中的低速运动进行了分析,据此可能使该位置代表水力旋流器中旋涡的末端。

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