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Application of Dynamic Mesh Method in CFD to Engineering Designs of Needle-Free Liquid Jet Injector and Diaphragm-less Shock Tube

机译:动态网格法在CFD中的应用无针液体射流喷射器和无隔膜冲击管的工程设计

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摘要

Many engineering devices have dynamic components and hence, their computational models are no longer fixed in space and time. In these cases, dynamic mesh method is often applied to analyze their motion or unsteady fluid dynamics around/inside them. This study deals with the engineering application of CFD particularly using dynamic mesh methods to simulate firstly the compressible transient flow in a needle-less liquid jet injector for biomedical application and secondly, the performance of a diaphragm-less shock tube design for investigation of high-speed compressible gas dynamics. The CFD software OpenFOAM® is used as the main research tool to carry out this study. udFor the first application, the dynamic behavior of the liquid jet is approximated using multi-phase compressible immiscible fluids LES solver together with the Volume-of-Fluid (VOF) method for the interface capturing. The liquid retained in the injector chamber is impacted by the moving grid boundary to mimic the injector piston driven by the driver air pressure; and the high speed liquid jet is emitted to atmosphere region though a nozzle. Numerical results are validated and discussed by comparing with experimental measurements. Performance plots as a function of various injector parameters are constructed and explained.udThe second application concerns with the diaphragm-less shock tube design which consists of an outer tube contained with high pressure and an inner one with low pressure.udA particular design of diaphragm-less shock tube utilizes a rapid opening sleeve to mimic the rupture of a diaphragm which is traditionally used to separate the two pressure region. Applying CFD with dynamic mesh to the sleeve motion contributes to the analysis of the process of shock wave generation in this device and the shock tube parameters such as opening time of the sleeve for reliable performance.udIt is proven in this work that the numerical CFD models with dynamic mesh can accurately predict the performance of both engineering devices and provide a useful tooludto analyze which parameters most significantly impact the performances.
机译:许多工程设备具有动态组件,因此,它们的计算模型不再在空间和时间上固定。在这些情况下,通常使用动态网格方法来分析它们的运动或它们周围/内部的不稳定流体动力学。这项研究涉及CFD的工程应用,尤其是使用动态网格方法来模拟生物医学应用中的无针液体喷射注射器中的可压缩瞬态流动,其次是用于研究高强度流体的无隔膜冲击管设计的性能。加快可压缩气体动力学。 CFD软件OpenFOAM®被用作进行这项研究的主要研究工具。 ud对于第一个应用程序,使用多相可压缩不混溶流体LES解算器以及用于界面捕获的流体体积(VOF)方法来近似液体射流的动态行为。保留在喷油器腔中的液体受到移动的栅格边界的影响,以模仿由驾驶员气压驱动的喷油器活塞。高速液体射流通过喷嘴排放到大气区域。通过与实验测量结果进行比较来验证和讨论数值结果。 ud第二个应用涉及无隔膜减震管的设计,该设计由一个装有高压的外管和一个装有低压的内管组成。 ud无隔膜减震管利用快速打开的套管来模拟隔膜的破裂,而隔膜的破裂通常用于分隔两个压力区域。将动态网格CFD应用到套管运动中有助于分析该设备中的冲击波生成过程以及冲击管参数(例如套管的打开时间),从而获得可靠的性能。 ud这项工作证明了数值CFD具有动态网格的模型可以准确地预测两个工程设备的性能,并提供有用的工具 ud来分析哪些参数对性能的影响最大。

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    Nakayama Haruka;

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  • 年度 2013
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