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Transient Large Eddy Simulation of Slurry Erosion in Submerged Impinging Jets

机译:淹没撞击喷射器中泥浆腐蚀的瞬态大涡模拟

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Submerged impingement jets are widely used in erosion/corrosion experiments as it is easy to control jet standoff distance, jet angle, and flow velocities in experiments. In addition to experiments, typically computational fluid dynamics (CFD) technique has been used to simulate slurry flow in this geometry to investigate erosion process and develop erosion models or equations. The traditional CFD simulations of erosion in this geometry use the Reynolds-averaged Navier-Stokes (RANS) equations with turbulence models. By using this technique, time-averaged fluid flow is revealed, and thus, time-averaged erosion rate can be obtained by tracking particles in the fluid flow field. However, this seemingly simple flow displays unsteady flow structures in the stagnation zone of the flow field and its effects on the erosion process were previously unclear. In this study, large eddy simulation (LES) is used to simulate unsteady fluid flow in different impingement jets in an Euler-ian scheme. Then, transient particle tracking is performed in a Lagrangian scheme. Particles are injected randomly at the inlet plane and tracked to simulate unsteady erosion that occurs on the target surface. Finally, an erosion equation is used to calculate solid particle erosion rates. The LES Eulerian-Lagrangian erosion modeling is further validated by available experimental data for fluid velocities and an erosion profile. The results show that the accuracy of erosion prediction of small particles is improved significantly by using the LES method. In addition, the unsteady particle motion and erosion process can be revealed by using this method.
机译:浸没式冲击喷气机广泛用于腐蚀/腐蚀实验,因为它易于控制试验距离,喷射角度和实验中的流速。除了实验之外,通常使用计算流体动力学(CFD)技术已经用于模拟该几何形状中的浆料流动,以研究侵蚀过程并开发侵蚀模型或方程。这种几何形状中的传统CFD模拟使用雷诺平均Navier-Stokes(RAN)方程与湍流模型使用。通过使用该技术,揭示了时间平均流体流动,因此,通过在流体流场中跟踪颗粒,可以获得时间平均腐蚀速率。然而,这种看似简单的流动在流场的停滞区内显示了不稳定的流动结构,其对侵蚀过程的影响先前尚不清楚。在这项研究中,大型涡流模拟(LES)用于在Euler-IAN方案中模拟不同冲击喷射器中的不稳定流体流动。然后,在拉格朗日方案中执行瞬态粒子跟踪。颗粒在入口平面上随机注入并跟踪以模拟在目标表面上发生的不稳定侵蚀。最后,使用侵蚀方程来计算固体粒子侵蚀率。 LES Eulerian-Lagrangian侵蚀建模是通过用于流体速度和侵蚀剖面的可用实验数据进行了进一步验证。结果表明,通过使用LES法,显着提高了小颗粒的侵蚀预测的准确性。此外,可以使用该方法揭示不稳定的粒子运动和侵蚀过程。

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