Mathematical Modeling of the Inception and Development of Cavitation in Turbulent Liquid Flow in a Symmetric Channel
- Authors: Iben U.1, Makhnov A.V.2, Schmidt A.A.2,3
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Affiliations:
- Robert Bosch GmbH, Corporate Research
- Peter the Great St. Petersburg Polytechnic University
- Ioffe Physical Technical Institute, Russian Academy of Sciences
- Issue: Vol 45, No 1 (2019)
- Pages: 41-44
- Section: Article
- URL: https://bakhtiniada.ru/1063-7850/article/view/208188
- DOI: https://doi.org/10.1134/S1063785019010255
- ID: 208188
Cite item
Abstract
The process of cavitation inception and development in turbulent flow of a hydrocarbon fuel in a square channel under the action of a large constant pressure difference has been studied. It is established that the flow in this system is substantially unsteady and, despite the fact that the channel possesses both vertical and horizontal symmetry, the structure of cavitating flow is significantly asymmetric. This circumstance plays an important role in analysis of the fundamental problem of cavitation inception and development in a wide range of practical problems. The mathematical modeling of turbulent cavitating flows was based on the Navier–Stokes equations supplemented by the equation of state of a barotropic medium. Simulations were performed using a modified algorithm of the open-source computational fluid dynamics toolbox OpenFOAM. Comparison of the results of test simulations to available experimental data showed the appropriateness and efficiency of the proposed algorithm.
About the authors
U. Iben
Robert Bosch GmbH, Corporate Research
Email: a_makhnov@mail.ru
Russian Federation, St. Petersburg
A. V. Makhnov
Peter the Great St. Petersburg Polytechnic University
Author for correspondence.
Email: a_makhnov@mail.ru
Russian Federation, St. Petersburg, 195221
A. A. Schmidt
Peter the Great St. Petersburg Polytechnic University; Ioffe Physical Technical Institute, Russian Academy of Sciences
Email: a_makhnov@mail.ru
Russian Federation, St. Petersburg, 195221; St. Petersburg, 194021
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