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DOE OSTI · 2563350

Particle removal from a flat surface using a translating bounded vortex flow

Abstract

A bounded vortex flow is a hydrodynamic approach for removal of particles from a surface without scattering the particles onto nearby surfaces. The bounded vortex flow field is generated by a nozzle that combines azimuthally tilted jets arranged in a circular pattern and a central suction port. When the nozzle face is directed toward an ‘impingement surface’, the flow develops a wall-normal intake vortex below the suction outlet, which causes high shear stress on the impingement surface. When particles are present on the impingement surface, the high shear stress causes particles to roll along the surface and to be lifted off the surface and transported up the core of the wall-normal vortex into the suction outlet. In typical applications, the nozzle would be translated along the impingement surface to clean particles from the surface. The current paper reports on an experimental study of the effect of nozzle translation on the effectiveness of the bounded vortex flow field for particle mitigation. The effectiveness of particle mitigation was examined as a function of flow rate through the nozzle, particle size, and nozzle translation velocity relative to the impingement surface. As a result, numerical computations are used to relate the flow rate to the maximum shear stress on the impingement surface, which is then used to theoretically predict onset of particle motion.

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BibTeXRIS

DesRoberts, Ben [University of Vermont, Burlington, VT (United States); University of Vermont], Marshall, Jeffrey S. [University of Vermont, Burlington, VT (United States)]. 2025-04-24. Particle removal from a flat surface using a translating bounded vortex flow. https://doi.org/10.1016/j.powtec.2025.121034

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