首页> 外文会议>ASME Fluids Engineering Division summer meeting >CLOGGING MECHANISMS OF VORTEX PUMPS : FIBROUS MATERIAL MOTION CAPTURE AND SIMULATION WITH A CFD AND DEM COUPLING METHOD
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CLOGGING MECHANISMS OF VORTEX PUMPS : FIBROUS MATERIAL MOTION CAPTURE AND SIMULATION WITH A CFD AND DEM COUPLING METHOD

机译:涡流泵的堵塞机理:纤维材料运动捕获及其CFD和DEM耦合方法的模拟。

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Since wastewater pumps used in sewage systems have a trade-off relationship between non-clogging ability and efficiency, many internal flow and performance estimation studies so far have focused on optimizing both parameters. Here we focus on vortex pumps with a large space that allows foreign matters to pass through inside the casing that are used as sewage pumps. In this paper, using experimental and numerical methods, we clarified clogging mechanism in the pumps using CFD (Computational Fluid Dynamics), Motion Capture and PIV (Particle Image Velocimetry) method. Firstly, since it was difficult to observe the motion of foreign matter in the pumps, a simple experimental apparatus was built to quantify it. Five cylindrical rods were set in a rectangular water passage made of acrylic that has an 80mm*80mm cross section. The motion of strings in the passage was studied with experiments and computations. Strings were chosen as foreign matter because they are comparatively easy to compute and experiment with compared to fabric for example. In the experiments, the motion of strings could be recorded with a high-speed video camera and their motions were quantified with two-dimensional motion capture system. In the computations, the motion of strings was simulated using DEM (Discrete Element Method) in the CFD software STAR-CCM+ by connecting particles with straight lines and coupling CFD with DEM. It is a numerical value method in which the motion and interaction of a large number of disintegrating objects is simulated. Its characteristic is that the point of contact between the particles is included in the equation of motion. Particles are connected by massless rods. These rods transmit force and momentum to each particle. Furthermore, the force between each particle is computed of the interaction between soft-particles and their bonding strength. In order to formulate the contact force between the particles, the spring-dashpot system is used. In addition, the optimal parameters of the DEM particles were obtained by conducting a parameter study. We confirmed that the motion of the strings in the flow direction coincided with at a high precision in the passage. Furthermore, by applying the computational method with the above results, we were able to simulate the motion of strings in a vortex pump. We found that strings were pulled back into the pump by the backflow in the tongue of the pump. This backflow was observed using PIV results, providing experimental confirmation of this mechanism. Moreover, we were able to simulate the motions of fibrous materials in the passage and vortex pump.
机译:由于污水处理系统中使用的污水泵在不阻塞能力和效率之间具有折衷关系,因此到目前为止,许多内部流量和性能估算研究都集中在优化两个参数上。在这里,我们将重点放在具有大空间的涡流泵上,该涡流泵允许异物穿过用作污水泵的机壳内部。在本文中,通过实验和数值方法,我们使用CFD(计算流体动力学),运动捕获和PIV(颗粒图像测速)方法阐明了泵的堵塞机理。首先,由于很难观察到泵中异物的运动,因此建立了一个简单的实验设备对其进行量化。将五个圆柱杆放置在由丙烯酸制成的矩形水通道中,该水通道的横截面为80mm * 80mm。通过实验和计算研究了琴弦在琴弦中的运动。之所以选择字符串作为异物,是因为与例如织物相比,它们比较容易计算和试验。在实验中,可以用高速摄像机记录琴弦的运动,并用二维运动捕捉系统对它们的运动进行量化。在计算中,通过在CFD软件STAR-CCM +中使用DEM(离散元素方法)模拟字符串的运动,方法是将粒子与直线连接,并将CFD与DEM耦合。它是一种数值方法,其中模拟了大量崩解对象的运动和相互作用。它的特征是粒子之间的接触点包含在运动方程中。粒子通过无质量杆连接。这些杆将力和动量传递给每个粒子。此外,每个粒子之间的力是通过计算软粒子之间的相互作用及其结合强度来计算的。为了确定颗粒之间的接触力,使用了弹簧-阻尼系统。另外,通过进行参数研究获得了DEM颗粒的最佳参数。我们确认,弦线在流动方向上的运动与通道中的高精度相吻合。此外,通过将计算结果应用于上述结果,我们能够模拟旋涡泵中弦的运动。我们发现琴弦由于泵舌的回流而被拉回到泵中。使用PIV结果观察到这种回流,提供了对该机理的实验证实。此外,我们能够模拟通道和涡旋泵中纤维材料的运动。

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