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Atomization and spray characteristics around an ERBS using various operational models and conditions: numerical investigation

机译:使用各种操作模型和条件的ERB周围的雾化和喷雾特性:数值调查

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The impetus of the current paper is to conduct numerical evaluations about the fundamental behaviors of the flow in an electrostatic rotary bell sprayer (ERBS) during the formation of the droplets and depositing on a target. The effect of operational parameters like bell rotational speed, shaping air and paint flow rate, electrical charge values and droplet distributions are considered precisely. Here, an Eulerian-Lagrangian algorithm that contains a model for airflow field, spray dynamics, electric charge field, droplet trajectory tracking and wall film dynamics has been extended by using the OpenFOAM package. The fluid dynamics is computed by using a large eddy simulation (LES) turbulence model. The mechanism of atomization is facilitated by the action of the centrifugal force that conducted the disintegrated droplets to the cup edge. Following that, the high-velocity droplets affected by the shaping airflow and electric force are transported towards the workpiece. The effect of the bell rotational speed in comparison with other parameters is dominant. The measured size of the droplets is controlled by increasing the bell rotational speed or decreasing the paint flow rate, in this case, promoting a reduction in droplet size. The droplet size near the bell cup was increased noticeably, however, their radius becomes more uniform at a longer lateral distance. Investigation of the various breakup models is one of the main goals of this work to predict the droplet size more precisely. The Reitz-KHRT, Reitz-Diwakar, Pilch-Erdman and the newly modified TAB model are examined in order to predict the breakup process in the ERBS. As the paint droplets are a viscous fluid a modification of the Taylor Analogy Breakup (TAB) approach taking non-linear influences for large viscosity into account is recommended. The use of the breakup models creates a smaller droplet size and this means they are more sensitive to recirculation regions flow pattern. The implemented wall film function was able to predict the transport in the boundary layer over the target. The numerical results describe exact values for the size, distribution, velocity and trajectory of the particles in ERBS, and these results are important for coating industries, in order to optimize their working conditions.
机译:目前纸张的推动是在液滴形成和沉积在靶中,对静电旋转钟喷雾器(ERBS)中的流动的基本行为进行数值评估。钟旋转速度,成形空气和涂料流速,电荷值和液滴分布等操作参数的效果被认为是精确的。在这里,通过使用OpenFoam封装,已经延长了一个包含气流场,喷射动力学,电荷场,液滴轨迹跟踪和墙膜动力学模型的欧拉维拉格朗日算法。通过使用大涡模拟(LES)湍流模型来计算流体动力学。通过将崩解的液滴传导到杯边缘的离心力的作用促进了雾化机制。在此之后,受到成形气流和电力影响的高速液滴朝向工件输送。与其他参数相比的钟旋转速度的影响是显性的。在这种情况下,通过增加钟旋转速度或降低涂料流速来控制液滴的测量尺寸,促进液滴尺寸的降低。钟杯附近的液滴尺寸明显增加,然而,它们的半径在更长的横向距离处变得更加均匀。对各种分手模型的调查是这项工作的主要目标之一,可以更准确地预测液滴尺寸。 Reitz-KHRT,Reitz-Diwakar,Pilch-Erdman和新修改的标签型号被检查,以预测ERB中的分解过程。由于涂料液滴是粘性流体,建议推荐使用泰勒类比(Tab)方法的修改,以考虑大粘度的非线性影响。使用分段模型创造了较小的液滴尺寸,这意味着它们对再循环区域的流量模式更敏感。实施的壁膜功能能够在目标上预测边界层中的传输。数值结果描述了ERB中颗粒的尺寸,分布,速度和轨迹的精确值,这些结果对于涂覆工业很重要,以优化其工作条件。

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