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Three-dimensional numerical simulations of the particle loading effect on gas flow features for low pressure cold spray applications

机译:低压冷喷涂应用气体流动特征颗粒载荷效果的三维数值模拟

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This paper reports numerical investigations to develop a high quality simulation model for the Cold Spray (CS) process as part of the project, Supersonic Spray Advanced Modelling (SSAM). Cold spray is a process in which unmelted solid particles are accelerated through a De Laval nozzle toward a target surface and deposited, which avoids or minimises the detrimental effects that arise from melting. The gas flow injected allows the particles to achieve velocities up to 1000 m/s until they impact onto a substrate, bonding with plastic deformation. Analytical and numerical tools were used in the recent years to study the most important parameters of the fluid dynamic of the process. These parameters are often overestimated or non-validated, as many authors tend to neglect inter-phase couplings. The interactions between the gas flow features and particulate phase are important for the present multiphase flows, and many of the connected phenomena lack physical comprehension. For this purpose, a detailed 3D model for RANS simulations has been realised and the gas and particle dynamics in the nozzle and jet were analysed. Advancements for future computational methods are derived from this study, in order to build a comprehensive and coherent numerical model for cold spray applications.
机译:本文报告了数值调查,为诸如项目的一部分开发了冷喷雾(CS)过程的高质量仿真模型,超音速喷涂高级建模(SSAM)。冷喷雾是一种方法,其中未熔化的固体颗粒通过De Laval喷嘴朝向目标表面加速并沉积,这避免或最小化熔化产生的不利影响。注入的气体流动允许颗粒实现高达1000米/秒的速度直至它们冲击基板,与塑性变形粘合。近年来使用了分析和数值工具,以研究该过程的流体动力学的最重要参数。由于许多作者倾向于忽略相互耦合,这些参数通常经常过高或不验证。气体流动特征和颗粒相之间的相互作用对于本发明的多相流是重要的,并且许多连接现象缺乏物理理解。为此目的,已经实现了RAN模拟的详细3D模型,并分析了喷嘴和喷射器中的气体和粒子动力学。未来计算方法的进步来自本研究,以便为冷喷涂应用构建全面和相干的数值模型。

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