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An innovative modification to the Menter shear-stress transport turbulence model employing the symbolic regression approach

  • Hanqi Song
  • , Mingze Ma
  • , Chen Yi
  • , Zhiyuan Shao
  • , Ruijie Bai
  • , Chao Yan*
  • *Corresponding author for this work
  • Beihang University

Research output: Contribution to journalArticlepeer-review

Abstract

Drawing from the non-equilibrium link between the production Pk and dissipation ϵ of turbulent kinetic energy (TKE), we advocate for the introduction of a limiter to modulate the TKE production term within the Menter shear-stress transport (SST) model. The original SST model is made more sensitive to the adverse pressure gradient (APG) by Bradshaw's assumption. Bradshaw's assumption introduces the equilibrium condition P k / ϵ = 1 in most regions of the turbulent boundary layer. In the APG flows with P k ≫ ϵ , the equilibrium condition suppresses the magnitude of TKE (k) within the boundary layer, resulting in an early separation problem. To address this issue, we employ the symbolic regression (SR) to scrutinize the physical correlation between P k / ϵ and local turbulence parameters, obtaining an approximate function FSR that encapsulates the relationship between P k / ϵ , S k / ϵ , and y+ in the APG flow. Following its incorporation into the original SST model in the form of a limiter, the FSR evolves into the SST-Symbolic Regression Evolution model. The SST-SRE is then applied to four cases with APGs. The modification leads to an increase in the skin-friction coefficient Cf in the APGs region and causes a downstream shift in the separation location, improving the consistency with high-accuracy data and experimental results. It is demonstrated that this correction can improve the early separation problem in the Menter SST turbulence model.

Original languageEnglish
Article number065108
JournalPhysics of Fluids
Volume36
Issue number6
DOIs
StatePublished - 1 Jun 2024

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