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Prediction and evolution of drop-size distribution for a new ultrasonic atomizer

机译:新型超声雾化器液滴尺寸分布的预测和演变

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Complete modeling of a new ultrasonic atomizer, the Spray On Demand (SOD) printhead, was carried out to enable its optimization. The modeling was focused on various factors, including nozzle vibrations and a theoretical prediction of the SOD drop-size distribution. Assuming that the spray is generated based on Faraday instability, a prediction of the drop-size distribution within the framework of a specific and general Maximum Entropy Formalism (MEF) was developed. This prediction was formulated using the conservation laws of energy and mass, as well as the three-parameter generalized Gamma distribution. After establishing an analytical expression to estimate the Sauter Mean Diameter, a qualitative validation of the model was performed by comparing predictions with experimental measurements of the drop-size distribution. The dynamic model is shown to be sensitive to operating conditions and physical properties of the fluid. The prediction capabilities of the model were found to be adequate, paving the way for optimization of the atomizer. The evolution of the drop-size distribution, under the coalescence effect, was also assessed using a convergent Monte Carlo method to solve the distribution equation. This was formulated in a mass flow algorithm, leading to a more physically relevant distribution.
机译:对新的超声雾化器即“按需喷涂”(SOD)打印头进行了完整建模,以实现其优化。建模集中在各种因素上,包括喷嘴振动和SOD液滴尺寸分布的理论预测。假设基于法拉第不稳定性产生了喷雾,则对特定和一般的最大熵形式主义(MEF)框架内的液滴尺寸分布进行了预测。使用能量和质量守恒定律以及三参数广义Gamma分布来制定此预测。建立分析表达式以估算Sauter平均直径后,通过将预测值与液滴尺寸分布的实验测量值进行比较,对模型进行了定性验证。动态模型显示对流体的工作条件和物理特性敏感。发现该模型的预测能力足够,为雾化器的优化铺平了道路。在聚结效应下,还使用收敛蒙特卡罗方法评估了液滴大小分布的演变,以求解分布方程。这是通过质量流量算法制定的,从而导致了更相关的物理分布。

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