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A NEW CAVITATION-INDUCED-MOMENTUM-DEFECT (CIMD) CORRECTION APPROACH TO TRACK CAVITATION EVENTS

机译:一种新的空化诱导动量缺陷(CIMD)校正方法来跟踪空化事件

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A new unsteady cavitation event tracking model is developed for predicting vapor dynamics occurring in multidimensional incompressible flows. The procedure solves incompressible Navier-Stokes equations for the liquid phase with an additional vapor transport equation for the vapor phase. The model tracks regions of liquid vaporization and applies compressibility effects to compute the local variation in speed of sound using the Homogeneous Equilibrium Model (HEM) assumptions. The variation of local cell density as a function of local pressure is used to construct the source term in the vapor fraction transport equation. The novel Cavitation-Induced-Momentum-Defect (CIMD) correction methodology developed in this study serves to account for cavitation inception and collapse events as relevant momentum source terms in the liquid phase momentum equations. Effects of vapor phase accumulation and diffusion are incorporated by detailed relaxation models. A modified RNG K-ε model, including the effects of compressibility in the vapor regions, is employed for modeling turbulence effects. Turbulent kinetic energy and dissipation contributions from the vapor regions are integrated with the liquid phase turbulence using relevant source terms. Numerical simulations are carried out using a Finite Volume methodology available within the framework of commercial CFD software code Fluent v.6.2. Simulation results are in qualitative agreement with experiments for unsteady cloud cavitation behavior in planar nozzle flows. Multitude of mechanisms such as formation of vortex cavities, vapor cluster shedding and coalescence, cavity pinch off are sharply captured by the supplemented vapor transport equation. Our results concur with previously established theories concerning sheet and cloud cavitation such as the re-entrant jet motion, cavity closure and the impact of adverse pressure gradients on cavitation dynamics.
机译:开发了一种新的不稳定空化事件跟踪模型,用于预测在多维不可压缩流动中发生的蒸汽动态。该方法解决了具有用于气相的附加蒸汽传输方程的液相的不可压缩的Navier-Stokes方程。模型跟踪液体蒸发区域,并应用压缩效应来计算使用均匀平衡模型(下摆)假设来计算声音速度的局部变化。作为局部压力函数的局部电池密度的变化用于构建蒸汽分数传输方程中的源极。本研究中开发的新型空化诱导的动量缺陷(CIMD)校正方法是用于液相动量方程中的空化初始和折叠事件的难以征收和崩溃事件。气相积累和扩散的影响通过详细的松弛模型并入。一种改进的RNG K-ε模型,包括蒸汽区压缩性的效果,用于建模湍流效应。湍流动能和来自蒸汽区的耗散贡献使用相关源术语与液相湍流集成。使用商业CFD软件代码Fluent V.6.2框架内提供的有限体积方法进行数值模拟。仿真结果与平面喷嘴流动中不稳定的云空化行为的实验进行了定性协议。通过补充的蒸汽传输方程急剧地捕获诸如涡流腔的形成,蒸气簇脱落和聚结,腔夹剖去的多种机构。我们的结果同意以前建立了有关纸张和云空化的理论,例如再参赛者喷射运动,腔闭合和不良压力梯度对空化动力学的影响。

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