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Dissipation scaling in wind turbine wakes exposed to free-stream turbulence

Published 3 Sep 2026 in physics.flu-dyn | (2609.03996v1)

Abstract: The nature of the dissipation of turbulent kinetic energy (TKE) is investigated experimentally in the wake of a diameter D=0.58D=0.58m wind turbine exposed to several flavours'' of high-Reynolds-number free-stream turbulence (FST). For low- and moderate-intensity FST, an annular region of elevated normalised dissipation, CεC_{\varepsilon}, develops in the outer wake, coinciding with a ring of enhanced turbulence intermittency at both small (λ\ell \leq λ) and large (D\ell \geq D) scales, where λλ is the Taylor microscale. In the blade-tip region, CεC_{\varepsilon} scales with ReD/Reλ\sqrt{Re_D}/Re_λ, where ReDRe_D is a global Reynolds number and ReλRe_λ a local turbulent Reynolds number based on λλ-a scaling indicative of dissipation being out of equilibrium with the inter-scale flux of TKE in the inertial range of the energy cascade. This non-equilibrium regime is interpreted in light of the observed intermittency : large-scale intermittent events (i.e., low-wavenumber perturbations/kicks''), driven by persistent tip-vortex and tip-shear-layer dynamics under low-intensity FST, require a finite time to cascade down to the dissipative scales, thereby introducing an imbalance between the inter-scale energy flux and dissipation. At the wake centreline, by contrast, CεC_{\varepsilon} remains approximately constant with streamwise distance, reflecting either classical Kolmogorov-type equilibrium turbulence or balanced non-equilibrium turbulence, with intermittency confined to the small scales. Under high-intensity FST, large-scale intermittency is suppressed, consistent with the erosion of tip-vortex structures, and no comparable scaling for CεC_{\varepsilon} could be identified using a single turbulent Reynolds number for these cases, where two similarly intense streams of turbulence, but of different origins, are adjacent to one another.

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