Boundary layer transition induced by surface roughness distributed over a low-pressure turbine blade

Fuente: arXiv
Salvato in:
Dettagli Bibliografici
Autori principali: Zhu, Xianwen, Ge, Yuchen, Zhao, Yaomin, Xiao, Zuoli, Sandberg, Richard D.
Natura: Preprint
Pubblicazione: 2025
Soggetti:
Accesso online:
Tags: Aggiungi Tag
Nessun Tag, puoi essere il primo ad aggiungerne!!
_version_ 1866912839721025536
author Zhu, Xianwen
Ge, Yuchen
Zhao, Yaomin
Xiao, Zuoli
Sandberg, Richard D.
author_facet Zhu, Xianwen
Ge, Yuchen
Zhao, Yaomin
Xiao, Zuoli
Sandberg, Richard D.
contents Direct numerical simulations of a low-pressure turbine with roughness elements distributed over the blade surface have been performed. A series of fifteen cases with varying roughness heights and streamwise wavenumbers are introduced to present a systematic study of the effect of roughness on the various transition phenomena in the suction-side boundary layer. For cases with large roughness heights, the boundary layer is violently disturbed by the wake of rough elements in the leading edge (LE) region, and maintains the turbulent state over the whole blade suction-side. For cases with small roughness heights, however, the disturbances induced by the LE roughness are suppressed by the favourable pressure gradient in the downstream boundary layer, and the relaminarized flow does not undergo transition until the separation near the blade trailing edge (TE). Furthermore, the streamwise wavenumber of the distributed roughness plays an important role in cases with intermediate roughness height. Specifically, cases with larger streamwise slope show earlier transition induced by strong shear layer instability, which manages to suppress the mean flow separation near the TE region. Overall, the combined effect of several factors, including the geometric effect at the blade LE and TE, the complex pressure gradient distribution across the turbine vane, and the various roughness configurations, is responsible for the intriguing boundary layer behaviours in the present study.
format Preprint
id arxiv_https___arxiv_org_abs_2510_22310
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Boundary layer transition induced by surface roughness distributed over a low-pressure turbine blade
Zhu, Xianwen
Ge, Yuchen
Zhao, Yaomin
Xiao, Zuoli
Sandberg, Richard D.
Fluid Dynamics
Direct numerical simulations of a low-pressure turbine with roughness elements distributed over the blade surface have been performed. A series of fifteen cases with varying roughness heights and streamwise wavenumbers are introduced to present a systematic study of the effect of roughness on the various transition phenomena in the suction-side boundary layer. For cases with large roughness heights, the boundary layer is violently disturbed by the wake of rough elements in the leading edge (LE) region, and maintains the turbulent state over the whole blade suction-side. For cases with small roughness heights, however, the disturbances induced by the LE roughness are suppressed by the favourable pressure gradient in the downstream boundary layer, and the relaminarized flow does not undergo transition until the separation near the blade trailing edge (TE). Furthermore, the streamwise wavenumber of the distributed roughness plays an important role in cases with intermediate roughness height. Specifically, cases with larger streamwise slope show earlier transition induced by strong shear layer instability, which manages to suppress the mean flow separation near the TE region. Overall, the combined effect of several factors, including the geometric effect at the blade LE and TE, the complex pressure gradient distribution across the turbine vane, and the various roughness configurations, is responsible for the intriguing boundary layer behaviours in the present study.
title Boundary layer transition induced by surface roughness distributed over a low-pressure turbine blade
topic Fluid Dynamics
url https://arxiv.org/abs/2510.22310