Simulations of zero pressure-gradient turbulent boundary layers over riblets
arXiv:2512.02034v1 Announce Type: new
Abstract: We computationally study the response of zero-pressure-gradient (ZPG) turbulent boundary layers (TBLs) to streamwise step changes from a smooth wall to riblets (S-R), and vice versa (R-S). We consider triangular riblets with tip angle $90^o$ (T9), that increase drag, with viscous-scaled spacing $50$. A novel grid-generation approach is developed for unstructured spectral-element codes, consistent with the size of turbulent scales across the TBL. We generate a ZPG TBL upstream of the step change (with thickness $delta_0$) with momentum thickness Reynolds number $Re_{theta_0} simeq 680$. The TBL departure from equilibrium due to the step change, and its subsequent relaxation, recall previous studies on step changes in surface roughness. Downstream of the R-S step change, the internal equilibrium layer thickness $delta_{IEL}$ reaches $0.4 delta_0$ within $12delta_0$. However, downstream of the S-R step change $delta_{IEL}$ reaches $0.4 delta_0$ within $4delta_0$. In all cases, $delta_{IEL}$ does not reach the boundary layer thickness, even up to a distance of $45delta_0$ downstream of the step change, owing to persistent history effects within the frozen wake region.
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