首页> 外文会议>ASME turbo expo: turbine technical conference and exposition >MODELING FUEL INJECTION IN GAS TURBINES USING THE MESHLESS SMOOTHED PARTICLE HYDRODYNAMICS METHOD
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MODELING FUEL INJECTION IN GAS TURBINES USING THE MESHLESS SMOOTHED PARTICLE HYDRODYNAMICS METHOD

机译:用无网状颗粒流体动力学方法模拟燃气轮机中的燃油喷射

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For predicting primary atomization a numerical code has been developed based on the Lagrangian Smoothed Particle Hydrodynamics (SPH) method. The advantage of this approach is the inherent interface advection. In contrast to commonly used grid based methods such as the Volume of Fluid (VoF) or Level Set method there is no need for costly and approximative interface tracking or reconstruction techniques which are required to avoid interface diffusion. It has been demonstrated by various test cases that the SPH method is capable to correctly predict single- as well as multiphase flows including the effect of surface tension. The goal of this work is to further develop the methodology with the intention to simulate primary atomization within airblast atomizers of jet engines. The authors present two test cases relevant for the simulation of primary atomization. The shear-driven deformation of a fuel droplet in a gaseous flow has been investigated and compared to data from literature. Moreover, the liquid film disintegration at the trailing edge of a planar prefilming airblast atomizer has been studied. The geometry has been derived from an existing test rig, where extensive experimental data have been acquired. Resulting droplet sizes and shear-off frequencies for different geometrical setups have been analyzed and compared to the experiment. The results reveal the promising performance of this new method for predicting primary atomization.
机译:为了预测一次雾化,已经基于拉格朗日平滑粒子流体动力学(SPH)方法开发了一个数字代码。这种方法的优点是固有的界面平流。与通常使用的基于网格的方法(例如“流体体积”(VoF)或“液位设置”方法)相反,不需要昂贵且近似的界面跟踪或重构技术,而这些技术都需要避免界面扩散。通过各种测试案例已证明,SPH方法能够正确预测单相和多相流,包括表面张力的影响。这项工作的目的是进一步开发该方法,以模拟喷气发动机的喷丸雾化器内的一次雾化。作者介绍了两个与一次雾化模拟相关的测试用例。已经研究了气流中燃料液滴的剪切驱动变形,并将其与文献数据进行了比较。而且,已经研究了在平面预成膜鼓风雾化器的后缘处的液膜崩解。几何形状是从现有的测试设备中获得的,在该设备中已获取了大量的实验数据。分析了不同几何设置的所得液滴尺寸和剪切频率,并将其与实验进行了比较。结果揭示了该新方法预测一次雾化的有前途的性能。

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