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March 13, 2026Acta Mechanica0 citationsOpen Access

Relaminarization of turbulent pipe flow induced by streamwise traveling wave wall transpiration and its scaling

CBChristian BauerCWClaus Wagner

Key Points

  • To investigate the effects of streamwise traveling waves on the relaminarization of turbulent pipe flow at varying Reynolds numbers.
  • Conducted experiments on turbulent pipe flow with wall transpiration techniques.
  • Examined effects of upstream and downstream traveling waves at different Reynolds numbers: 180, 360, and 720.
  • Varied parameters such as amplitude, celerity, and wavelength of the wave.
  • Measured changes in friction losses and energy consumption during flow relaminarization.
  • Traveling waves effectively relaminarized turbulent flows at Reynolds numbers up to 720.
  • Low-speed upstream traveling waves generated minimal drag but could reduce energy consumption under specific conditions.
  • Downstream traveling waves were more effective overall, with significant energy savings noted within specific amplitude ranges.

Abstract

Abstract In technical applications, pumping fluids through pipes often generates turbulent flows with high Reynolds numbers, where over 90% of the pumping energy is dissipated by near-wall turbulence. Relaminarization of such flows offers significant energy savings. Streamwise traveling waves of wall blowing and suction have been shown to relaminarize turbulent pipe flow at a low friction Reynolds number (Re =110 Re τ = 110), reducing friction losses and energy consumption. This work extends the investigation to higher Reynolds numbers, demonstrating that traveling waves can trigger relaminarization up to Re =720 Re τ = 720. A parametric study is conducted at Re =180 Re τ = 180 and Re =360 Re τ = 360, examining upstream traveling waves (UTWs, c c 0) and downstream traveling waves (DTWs, c>0 c > 0) while varying amplitude a, celerity c, and wavelength λ. Consistent with channel flow studies, UTWs destabilize the flow yet can generate sublaminar drag; only low-speed UTWs with large amplitudes effectively reduce energy consumption. For DTWs, a wide range of parameters reduces drag, but significant net energy savings occur only for 0. 067U₂, ₋₀₌ a 0. 1U₂, ₋₀₌ 0. 067 U c, l a m ≲ a ≲ 0. 1 U c, lam, c U₂, ₋₀₌ c ≈ U c, lam, and 360 _ λ ≈ 360 δ ν, independent of Reynolds number. During relaminarization, the turbulent kinetic energy decays exponentially nearly to zero within 3D/u_ 3 D / u τ, while the flow accelerates to its terminal velocity over 65D/u_ <mml: math xmlns: mml="http: //www. w3. org/

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Cite This Study

Bauer et al. (2026) studied this question.

synapsesocial.com/papers/69b3ab9102a1e69014ccc91ehttps://doi.org/10.1007/s00707-026-04637-1
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