Repository logo

Infoscience

  • English
  • French
Log In
Logo EPFL, École polytechnique fédérale de Lausanne

Infoscience

  • English
  • French
Log In
  1. Home
  2. Academic and Research Output
  3. Journal articles
  4. A new Euler-Lagrangian cavitation model for tip-vortex cavitation with the effect of non-condensable gas
 
research article

A new Euler-Lagrangian cavitation model for tip-vortex cavitation with the effect of non-condensable gas

Cheng, Huaiyu
•
Long, Xinping
•
Ji, Bin
Show more
January 1, 2021
International Journal Of Multiphase Flow

Numerical simulation of tip vortex cavitation (TVC) remains a challenging task in a variety of applica-tions, such as axial turbines and pumps as well as marine propellers. Although it is well known that TVC is highly sensitive to gas content, be it dissolved or not, numerical models do not consider this aspect so far. As a result, numerical simulations usually underestimate the development or the intensity of TVC. In the present paper, we propose an new Euler-Lagrangian cavitation model based on Rayleigh-Plesset (R-P) equation, taking into account the non-condensable gas. In this model, the Euler method is used to solve the global flow field and the Lagrangian method is used to track the migration of non-condensable gas bubbles into the vortex core. Based on the simplified R-P equation, the connection between local gas concentration and its effect on cavitation is modeled and the mass source terms in the original SchnerrSauer (S-S) cavitation model are modified. We applied the new cavitation model to a simplified case study, made of an elliptical NACA-16020 hydrofoil and compared the results with experimental observation. We obtained a significant improvement of the TVC prediction. Our work illustrates the major role of the gas content in sustaining cavitation downstream of the hydrofoil through an efficient attraction of nuclei, fueled by the low pressure induced by the vortex flow. (C) 2020 Elsevier Ltd. All rights reserved.

  • Details
  • Metrics
Type
research article
DOI
10.1016/j.ijmultiphaseflow.2020.103441
Web of Science ID

WOS:000591528200004

Author(s)
Cheng, Huaiyu
Long, Xinping
Ji, Bin
Peng, Xiaoxing
Farhat, Mohamed  
Date Issued

2021-01-01

Publisher

PERGAMON-ELSEVIER SCIENCE LTD

Published in
International Journal Of Multiphase Flow
Volume

134

Article Number

103441

Subjects

Mechanics

•

large-eddy simulation

•

numerical-simulation

•

flow

•

prediction

•

validation

•

field

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
SCI-STI-MF  
Available on Infoscience
March 26, 2021
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/176522
Logo EPFL, École polytechnique fédérale de Lausanne
  • Contact
  • infoscience@epfl.ch

  • Follow us on Facebook
  • Follow us on Instagram
  • Follow us on LinkedIn
  • Follow us on X
  • Follow us on Youtube
AccessibilityLegal noticePrivacy policyCookie settingsEnd User AgreementGet helpFeedback

Infoscience is a service managed and provided by the Library and IT Services of EPFL. © EPFL, tous droits réservés