Research Article

NUMERICAL MODELING OF BACKWARD-FACING STEP FLOW VIA COMPUTATIONAL FLUID DYNAMICS

Number: 054 September 30, 2023
EN

NUMERICAL MODELING OF BACKWARD-FACING STEP FLOW VIA COMPUTATIONAL FLUID DYNAMICS

Abstract

As a fundamental case for problems of fluid mechanics, examination of flow separation and its reattachment is important for engineering applications. Considering the significance of the subject, backward-facing step flow has been modeled via Computational Fluid Dynamics (CFD) based on an experimental study previously done at Re = 5000. Steady simulations have been conducted by k-ε Renormalization Group (RNG) considering the same flow conditions of the reference study. Pressure distributions, streamwise and cross-stream velocity components, velocity magnitude values with streamline patterns and turbulence kinetic energy values have been presented by using contour graphics. Furthermore, the stations for pressure distributions, velocity profiles for streamwise components and turbulence kinetic energy values have been defined for evolution of related data. Lower pressure zone for the wake region of the backward-facing step has been attained due to flow separation. Separation of the upstream boundary layer has been seen and it became a curved one. Moreover, turbulence level of the step wake has been obtained as higher than those of any other points. Transition to core flow has been attained at y* = 1.1 that is above the step height. Flow oscillations have been observed for x* ≥ 2 and y* ≤ 1 since the fluctuations for these values were effective in the wake region. To sum up, the dimensionless reattachment length has been numerically obtained as 5.92 which is very good agreement with the experimental results at same Reynolds number. The deviation from the reference results is from 0.34 % to 1.33 %.

Keywords

Supporting Institution

Konya Technical University - Academic Staff Training Program

Project Number

2018-OYP-046

Thanks

The present study has been supported by Konya Technical University Academic Staff Training Program with the project number of 2018-OYP-046.

References

  1. [1] Chen, L., Asai, K., Nonomura, T., Xi, G. and Liu, T., (2018). A review of backward-facing step (BFS) flow mechanisms, heat transfer and control, Thermal Science and Engineering Progress, 6, 194-216.
  2. [2] Teso-Fz-Betoño, D., Juica, M., Portal-Porras, K., Fernandez-Gamiz, U. and Zulueta, E., (2021). Estimating the reattachment length by realizing a comparison between URANS k-omega SST and LES WALE models on a symmetric geometry, Symmetry, 13(9), 1555.
  3. [3] Arthur, J.K., (2023). A narrow-channeled backward-facing step flow with or without a pin–fin insert: Flow in the separated region, Experimental Thermal and Fluid Science, 141, 110791.
  4. [4] Detto, M., Katul, G.G., Siqueira, M., Juang, J.Y. and Stoy, P., (2008). The structure of turbulence near a tall forest edge: The backward‐facing step flow analogy revisited, Ecological Applications, 18(6), 1420-1435.
  5. [5] Deepa, G. and Murali, G., (2014). Effects of viscous dissipation on unsteady MHD free convective flow with thermophoresis past a radiate inclined permeable plate, Iranian Journal of Science and Technology, 38(3.1), 379-388.
  6. [6] Jiaqiang, E., Cai, L., Li, J., Ding, J., Chen, J. and Luo, B., (2022). Effects analysis on the catalytic combustion and heat transfer performance enhancement of a non-premixed hydrogen/air micro combustor, Fuel, 309, 122125.
  7. [7] Zuo, W., Zhao, H., Jiaqiang, E., Li, Q. and Li, D., (2022). Numerical investigations on thermal performance and flame stability of hydrogen-fueled micro tube combustor with injector for thermophotovoltaic applications, International Journal of Hydrogen Energy, 47(39), 17454-17467.
  8. [8] Giannopoulos, A. and Aider, J.L., (2020). Prediction of the dynamics of a backward-facing step flow using focused time-delay neural networks and particle image velocimetry data-sets, International Journal of Heat and Fluid Flow, 82, 108533.

Details

Primary Language

English

Subjects

Engineering

Journal Section

Research Article

Publication Date

September 30, 2023

Submission Date

May 21, 2023

Acceptance Date

August 18, 2023

Published in Issue

Year 2023 Number: 054

APA
Göktepeli, İ., & Atmaca, U. (2023). NUMERICAL MODELING OF BACKWARD-FACING STEP FLOW VIA COMPUTATIONAL FLUID DYNAMICS. Journal of Scientific Reports-A, 054, 176-193. https://doi.org/10.59313/jsr-a.1300047
AMA
1.Göktepeli İ, Atmaca U. NUMERICAL MODELING OF BACKWARD-FACING STEP FLOW VIA COMPUTATIONAL FLUID DYNAMICS. JSR-A. 2023;(054):176-193. doi:10.59313/jsr-a.1300047
Chicago
Göktepeli, İlker, and Ulaş Atmaca. 2023. “NUMERICAL MODELING OF BACKWARD-FACING STEP FLOW VIA COMPUTATIONAL FLUID DYNAMICS”. Journal of Scientific Reports-A, nos. 054: 176-93. https://doi.org/10.59313/jsr-a.1300047.
EndNote
Göktepeli İ, Atmaca U (September 1, 2023) NUMERICAL MODELING OF BACKWARD-FACING STEP FLOW VIA COMPUTATIONAL FLUID DYNAMICS. Journal of Scientific Reports-A 054 176–193.
IEEE
[1]İ. Göktepeli and U. Atmaca, “NUMERICAL MODELING OF BACKWARD-FACING STEP FLOW VIA COMPUTATIONAL FLUID DYNAMICS”, JSR-A, no. 054, pp. 176–193, Sept. 2023, doi: 10.59313/jsr-a.1300047.
ISNAD
Göktepeli, İlker - Atmaca, Ulaş. “NUMERICAL MODELING OF BACKWARD-FACING STEP FLOW VIA COMPUTATIONAL FLUID DYNAMICS”. Journal of Scientific Reports-A. 054 (September 1, 2023): 176-193. https://doi.org/10.59313/jsr-a.1300047.
JAMA
1.Göktepeli İ, Atmaca U. NUMERICAL MODELING OF BACKWARD-FACING STEP FLOW VIA COMPUTATIONAL FLUID DYNAMICS. JSR-A. 2023;:176–193.
MLA
Göktepeli, İlker, and Ulaş Atmaca. “NUMERICAL MODELING OF BACKWARD-FACING STEP FLOW VIA COMPUTATIONAL FLUID DYNAMICS”. Journal of Scientific Reports-A, no. 054, Sept. 2023, pp. 176-93, doi:10.59313/jsr-a.1300047.
Vancouver
1.İlker Göktepeli, Ulaş Atmaca. NUMERICAL MODELING OF BACKWARD-FACING STEP FLOW VIA COMPUTATIONAL FLUID DYNAMICS. JSR-A. 2023 Sep. 1;(054):176-93. doi:10.59313/jsr-a.1300047

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