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May 14, 2026Thermophysics and Aeromechanics0 citations

Numerical modeling of propagation of a turbulent jet flowing from a slot into a confined space

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MZM. A. ZasimovaNIN. G. IvanovVRV. V. Ris

Key Points

  • The aim is to model the propagation of turbulent jets from a slot into a confined space and assess self-oscillation behavior.
  • Performed 2D and 3D unsteady Reynolds-averaged Navier-Stokes calculations.
  • Investigated configurations close to experimental conditions in the literature.
  • Analyzed the effects of cavity height and open boundary area on self-oscillation modes.
  • Strouhal number values from 2D and 3D models differ by approximately 10%, within experimental uncertainty.
  • Identified specific ranges of open boundary area and cavity height for the occurrence of self-oscillation modes.
  • Self-oscillations diminish when the open end boundary becomes small and cavity height approaches its length.

Abstract

The paper presents the results of parametric numerical modeling of turbulent jet propagation from a slot into a confined space at a Reynolds number of 4·103. The data of 2D and 3D unsteady Reynolds-averaged Navier–Stokes calculations in the basic confined space configuration close to the experimental conditions of Mataoui et al. (2001) show that the Strouhal number values obtained in the 2D and 3D formulations differ approximately by 10%, but both results are within the uncertainty of the experimental data. The ranges of the open boundary area and the cavity height for which self-oscillation modes are realized are obtained. It is shown that self-oscillations disappear when the transverse size of the open end boundary becomes small and when the cavity height becomes close to its length.

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Cite This Study

Zasimova et al. (2026) studied this question.

synapsesocial.com/papers/6a0567fda550a87e60a2049fhttps://doi.org/10.1134/s0869864325030084
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