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Integrated Simulation of the Atomization Process of a Liquid Jet Through a Cylindrical Nozzle

机译:通过圆柱喷嘴的液体射流雾化过程的集成模拟

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摘要

The 3-D structure of liquid atomization behavior through a cylindrical nozzle is numerically investigated and visualized by a new type of integrated simulation technique. CFD (Computational Fluid Dynamics) analysis focused on the consecutive breakup of a liquid column, formation of liquid film, and generation of droplets of a cylindrical flow in the outlet section of the nozzle. Utilizing the governing equations for high-speed atomizing nozzle flow based on the LES-VOF model in conjunction with the CSF model, an integrated parallel computation is performed to clarify the detailed atomization process of a cylindrical nozzle flow and to acquire data, which is difficult to confirm by experiment, such as atomization length, liquid core shape, distribution droplet sizes, spray angle and droplet velocity profiles. According to the present analysis, the atomization rate and the droplets-gas two-phase flow characteristics are found to be controlled by the turbulence perturbation upstream of the injector nozzle, hydrodynamic instabilities at the gas-liquid interface, and shear stresses between the liquid core and periphery of the jet.
机译:通过一种新型的集成仿真技术,对通过圆柱喷嘴的液体雾化行为的3-D结构进行了数值研究和可视化。 CFD(计算流体动力学)分析的重点是液柱的连续破裂,液膜的形成以及在喷嘴出口部分产生圆柱流的液滴。利用基于LES-VOF模型和CSF模型的高速雾化喷嘴流量的控制方程,进行集成并行计算以阐明圆柱状喷嘴流量的详细雾化过程并获取数据,这很困难通过实验确认,例如雾化长度,液芯形状,分布液滴尺寸,喷雾角度和液滴速度曲线。根据目前的分析,发现雾化速率和液滴-气体两相流动特性受喷射器喷嘴上游的湍流扰动,气液界面处的流体动力不稳定性以及液芯之间的剪切应力的控制。和喷气机的外围。

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