论文标题

在Euler-Lagrange液体射流中的欧拉 - 拉格朗日预测中的建模下降变形效应

Modeling Drop Deformation Effects in the Euler-Lagrange Prediction of Liquid Jet in Cross Flow

论文作者

Pakseresht, Pedram, Apte, Sourabh V.

论文摘要

使用Euler-Lagrange(EL)方法对喷雾雾化过程进行准确的预测,由于液相的高体积分数在致密状态下是具有挑战性的。实际上,这将取代气态阶段的显着部分,这在标准EL方法中通常被忽略。另外,在建模密集喷雾剂时,由于空气动力,表面张力和粘性力的相互作用,表面张力和粘性力的相互作用引起的液滴变形。在这项工作中,要使用EL方法捕获体积位移效应,请考虑气体相体积分数的时空变化。这会导致零元的数字,可变密度方程在动量和连续性方程中产生源项。结果表明,连续源项会增加载体相位靠近喷嘴的载体相位的速度和动力学。但是,由于射流的扩散和液滴的分散,这些影响进一步降低了下游。为了量化液滴变形效应,将不同的模型与实验数据进行比较。研究了不同的分手制度,以确定每个制度的最佳模型。形状变形效果通过执行单滴注射到横流中的单滴,其流量条件类似于袋式分解。与忽略变形的情况相比,观察到液滴运动的显着偏差。

Accurate prediction of spray atomization process using an Euler-Lagrange (EL) approach is challenging because of high volume fraction of the liquid phase in dense regimes. This would in reality displace a remarkable portion of the gaseous phase which is commonly ignored in the standard EL approaches. In addition, deformation of droplet due to the interaction of aerodynamic force, surface tension and viscous forces is typically neglected in modeling dense sprays. In this work, to capture the volumetric displacement effects using an EL approach, the spatio-temporal changes in the volume fraction of the gaseous phase are taken into account. This leads to zero-Mach number, variable density equations that give rise to a source term in both momentum and continuity equations. It is shown that the continuity source term increases the velocity and dynamics of the carrier phase close to the nozzle. However, owing to the jet spread and dispersion of droplets, these effects decrease further downstream. In order to quantify the droplet deformation effects, different models are compared together with an experimental data. Different breakup regimes are studied in order to identify the best model for each regime. The shape deformation effect is isolated by performing a single droplet injected into the cross flow with flow conditions similar to the bag-type breakup. A significant deviation in the motion of droplet is observed compared to a case where deformation is neglected.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源