4.7 Article

Investigations on interactions between vortex flow and the induced string cavitation characteristics in real-size diesel tapered-hole nozzles

期刊

FUEL
卷 287, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.fuel.2020.119535

关键词

Diesel fuel injection; Visualization experiment; CFD; String cavitation; Vortex flow; Vorticity transport

资金

  1. National Natural Science Foundation of China [51776088]
  2. National Key Research and Development Project of China [2019YFB1504004]
  3. China Postdoctoral Science Foundation [2020TQ0126]
  4. High-tech Research Key laboratory of Zhenjiang [SS2018002]
  5. Research Innovation Plan for Postgraduates in Jiangsu Universities of China [KYCX20_3023]

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The study investigated vortex-induced string cavitation in a real-size diesel tapered-hole injector nozzle through experiments and numerical simulations. Intermittent string cavitation mainly occurs in the SAC chamber and near the hole exit due to the complex distribution of vortices. The vortex stretching term is identified as the dominant factor for the formation and development of string cavitation.
An experimental and computational study was carried out to investigate the characteristics of vortex-induced string-type cavitation in the real-size diesel tapered-hole injector nozzle. A transparent-nozzle visualization experiment bench with high-speed imaging technology was applied to capture the string cavitation development in nozzles. Numerical simulations were conducted with the Reynolds stress turbulence model combined with the Schnerr-Sauer cavitation model. The numerical results are in good agreement with the experimental data. Intermittent string cavitation is mainly concentrated in the SAC chamber and near the hole exit due to the complex distribution of vortexes. The recirculated SAC flow encounters upstream injection flow resulting in a large vortex field which induced the formation of string cavitation. A large amount of cavitation vapor entrained by swirling flow is positioned in the near-field spray. Due to the higher dynamic pressure of cavitating flow in this region, the cavitation vapor bubbles are barely changed to liquid phase under the ambient pressure (101325 Pa). Three velocity components: axial, radial and tangential velocity are presented to characterize the flow field of string cavitation. Analysis based on the vorticity transport equation shows that the vortex stretching term is the dominant factor for the formation and development of string cavitation. The effect of dilatation term is secondary, followed by the baroclinic torque term effect on vorticity distribution.

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