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SIMULATION OF JET AGITATION IN SPRAYER TANKS: COMPARISON OF PREDICTED AND MEASURED WATER VELOCITIES

机译:喷雾罐内射流搅动的模拟:预期水流速度与测量水流速度的比较

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FLUENT, a computational fluid dynamics program, was used to investigate flow movements in sprayer tanks with hydraulic jet agitators. Two- and three-dimensional simulations were carried out utilizing single-phase (liquid phase only) and multiphase (solids particles in liquid) models. Earlier experimental studies of agitation effectiveness identified important factors affecting agitation effectiveness. This study was initiated to evaluate simulation as a tool in sprayer agitation system design. Interpretations of the flow field predictions supported previous measurements that determined system pressure to be the most influential factor on agitation effectiveness due to the direct relationship between pressure and jet velocity. Multiphase predictions of particle deposit amounts at the tank bottom were not feasible due to the computational demand of the model, which was an attempt to simulate three-dimensional turbulent flows with solid-liquid mixtures. Quantitative verification of single-phase simulations was accomplished by velocity measurements using hot-film sensors in a sprayer tank. Velocities were measured at 9 locations within the sprayer tank, and 12 jet agitation simulations were used. There were 118 of the 144 measured velocities within 50% of velocities predicted by FLUENT, and 120 of 144 measured velocities were within 0.2 m/s of predicted values. FLUENT-generated values tended to be greater than measured velocities near the top of the tank, and FLUENT velocities were always less than measured velocities at a position near the center of the tank
机译:FLUENT是一种计算流体动力学程序,用于研究带有液压喷射搅拌器的喷雾罐中的流动运动。利用单相(仅液相)和多相(液体中的固体颗粒)模型进行了二维和三维模拟。早期的搅拌效果实验研究确定了影响搅拌效果的重要因素。这项研究的开始是为了评估作为喷雾器搅拌系统设计工具的模拟。流场预测的解释支持先前的测量,这些测量将系统压力确定为由于压力和射流速度之间的直接关系而对搅拌效率产生最大影响的因素。由于模型的计算需求,无法对储罐底部的颗粒沉积量进行多相预测,这是尝试用固液混合物模拟三维湍流的尝试。单相模拟的定量验证是通过使用喷雾罐中的热膜传感器进行速度测量来完成的。在喷雾器水箱内的9个位置测量了速度,并使用了12个喷射搅拌模拟。在FLUENT预测的速度的50%范围内,有144个测量速度中的118个,在144个测量速度中有120个在预测值的0.2 m / s内。 FLUENT生成的值往往大于储罐顶部附近的测量速度,并且FLUENT速度始终小于储罐中央附近位置的测量速度

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