Direct numerical simulations of turbulent flow in longitudinally curved channels are used to investigate wall-pressure fluctuations over convex surfaces across a wide range of Reynolds numbers and curvature ratios. Inner scaling based on the friction velocity is shown to fail in collapsing the intensity of wall-pressure fluctuations when curvature is present. In contrast, an outer scaling based on the peak mean velocity yields a robust collapse for sufficiently large Reynolds numbers, leading to a simple universal expression for the pressure fluctuation intensity. Spectral analysis reveals that wall curvature significantly modifies the low-frequency content of the wall-pressure spectrum. The high-frequency tail is well described by the exponential-decay model for both plane and curved channel flows, rather than the more commonly assumed power-law distribution. Based on these findings, a new parametric model incorporating outer velocity scaling and an exponential high-frequency decay is proposed and shown to outperform existing empirical formulations across Reynolds numbers and curvature ratios.
Curvature effects on wall pressure fluctuations in moderate-Reynolds-number channel flow / Porpora, G., Soldati, G., Palumbo, A., Di Mascio, A., Pirozzoli, S.. - In: AIAA JOURNAL. - ISSN 0001-1452. - (2026), pp. 1-18. [10.2514/1.J067160]
Curvature effects on wall pressure fluctuations in moderate-Reynolds-number channel flow
Gianluca Porpora
Primo
;Giulio Soldati;Andrea Palumbo;Andrea Di Mascio;Sergio Pirozzoli
2026
Abstract
Direct numerical simulations of turbulent flow in longitudinally curved channels are used to investigate wall-pressure fluctuations over convex surfaces across a wide range of Reynolds numbers and curvature ratios. Inner scaling based on the friction velocity is shown to fail in collapsing the intensity of wall-pressure fluctuations when curvature is present. In contrast, an outer scaling based on the peak mean velocity yields a robust collapse for sufficiently large Reynolds numbers, leading to a simple universal expression for the pressure fluctuation intensity. Spectral analysis reveals that wall curvature significantly modifies the low-frequency content of the wall-pressure spectrum. The high-frequency tail is well described by the exponential-decay model for both plane and curved channel flows, rather than the more commonly assumed power-law distribution. Based on these findings, a new parametric model incorporating outer velocity scaling and an exponential high-frequency decay is proposed and shown to outperform existing empirical formulations across Reynolds numbers and curvature ratios.I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.


