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2D and 3D numerical modelling of internal flow of Pressure-swirl atomizer

机译:旋流雾化器内部流动的2D和3D数值模拟

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This paper compares 2D axisymmetric and 3D numerical models used to predict the internal flow of a pressure-swirl atomizer using a commercial software Ansys Fluent 18.1. The computed results are compared with experimental data in terms of spray cone angle (SCA), discharge coefficient ( C _(D)), internal air-core dimensions and swirl velocity profile. The swirl velocity was experimentally studied using a Laser Doppler Anemometry in a scaled transparent model of the atomizer. The internal air-core was visualized at high temporal and spatial resolution by a high-speed camera with backlit illumination. The internal flow was numerically treated as transient two-phase flow. The gas-liquid interface was captured with Volume of Fluid scheme. The numerical solver used both laminar and turbulent approach. Turbulence was modelled using k -ε, k- ω , Reynolds Stress model (RSM) and coarse Large Eddy Simulation (LES). The laminar solver was capable to predict all the parameters with an error less than 5% compared with the experimental results in both 2D and 3D simulation. However, it overpredicted the velocity of the discharged liquid sheet. The LES model performed similarly to the laminar solver, but the liquid sheet velocity was 10% lower. The two-equation models k -ε and k -ω overpredicted the turbulence viscosity and the internal air-core was not predicted.
机译:本文比较了使用商业软件Ansys Fluent 18.1预测压力旋流雾化器内部流量的2D轴对称和3D数值模型。将计算结果与喷雾锥角(SCA),排放系数(C _(D)),内部空芯尺寸和旋流速度分布图的实验数据进行比较。使用激光多普勒风速仪在定标的透明雾化器模型中对旋流速度进行了实验研究。通过具有背光照明的高速摄像机以高的时间和空间分辨率可视化内部空气核。内部流在数值上被视为瞬态两相流。气液界面是通过“流体体积”方案捕获的。数值求解器同时使用层流和湍流方法。使用k-ε,k-ω,雷诺应力模型(RSM)和粗大涡模拟(LES)对湍流进行建模。与2D和3D模拟中的实验结果相比,层流求解器能够预测所有参数,且误差小于5%。但是,它高估了排出的液体薄片的速度。 LES模型的性能与层流求解器相似,但液片速度降低了10%。两方程模型k-ε和k-ω高估了湍流粘度,而没有预测内部空芯。

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