Large-eddy simulation of the tip vortex flow in a ducted propulsor

被引:0
作者
Leasca, Theo J. T. [1 ,2 ]
Kroll, Thomas B. [3 ]
Mahesh, Krishnan [2 ]
机构
[1] Naval Surface Warfare Ctr, Carderock Div, West Bethesda, MD USA
[2] Univ Michigan, Naval Architecture & Marine Engn, Ann Arbor, MI 48109 USA
[3] Univ Minnesota, Aerosp Engn & Mech, Minneapolis, MN USA
关键词
turbulence simulation; vortex interactions; cavitation; LEAKAGE VORTEX; INSTABILITY; CAVITATION; TURBULENCE;
D O I
10.1017/jfm.2025.289
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Large-eddy simulation (LES) is performed to study the tip vortex flow in a ducted propulsor geometry replicating the experiments of Chesnakas & Jessup (2003, pp. 257-267), Oweis et al. (2006a J. Fluids Engng 128, 751-764) and Oweis et al. (2006b J. Fluids Engng 128, 751-764). Inception of cavitation in these marine propulsion systems is closely tied to the unsteady interactions between multiple vortices in the tip region. Here LES is used to shed insight into the structure of the tip vortex flow. Simulation results are able to predict experimental propeller loads and show agreement with laser Doppler velocimetry measurements in the blade wake at design advance ratio, $J=0.98$ . Results show the pressure differential across the blade produces a leakage vortex which separates off the suction side blade tip upstream of the trailing edge. The separation sheet aft of the primary vortex separation point is shown to take the form of a skewed shear layer which produces a complex arrangement of unsteady vortices corotating and counter-rotating with the primary vortex. Blade tip boundary layer vortices are reoriented to align with the leakage flow and produce instantaneous low-pressure regions wrapping helically around the primary vortex core. Such low-pressure regions are seen both upstream and downstream of the propeller blade trailing edge. The trailing edge wake is found to only rarely have a low-pressure vortex core. Statistics of instantaneous low pressures below the minimum mean pressure are found to be concentrated downstream of the blade's trailing edge wake crossing over the primary vortex core and continue in excess of 40 % chord length behind the trailing edge. The rollup of the leakage flow duct boundary layer behind the trailing edge is also seen to produce counter-rotating vortices which interact with the primary leakage vortex and contribute to strong stretching events.
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页数:30
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