Generalised actuator disk theory: wake development with turbulent entrainment

Fuente: arXiv
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Main Authors: Bastankhah, Majid, Hydon, Peter E., Shapiro, Carl, Gayme, Dennice F., Meneveau, Charles
Format: Preprint
Published: 2025
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_version_ 1866912981090041856
author Bastankhah, Majid
Hydon, Peter E.
Shapiro, Carl
Gayme, Dennice F.
Meneveau, Charles
author_facet Bastankhah, Majid
Hydon, Peter E.
Shapiro, Carl
Gayme, Dennice F.
Meneveau, Charles
contents Classical actuator disk theory, developed more than a century ago, provides an idealised description of turbine rotor performance. It treats a rotor as an infinitesimally-thin permeable disk and applies the governing flow equations over a streamtube encompassing the disk. A well-known limitation of the theory is its assumption of ideal flow downstream of the disk, which restricts its applicability to short downwind distances before turbulence and mixing processes governing the wake evolution take hold. The classical theory also leads to unphysical predictions of thrust and power coefficients for highly-loaded rotors. Turbulent axisymmetric wakes, by contrast, represent an extensively-studied canonical free shear flow with much of the progress and its applications to wind turbines limited to the far-wake dynamics. In this work, we introduce a generalised actuator disk theory based on a hybrid stream-tube and wake control volume, that seamlessly integrates classical actuator disk analysis with wake turbulence modelling at arbitrary distances from the rotor. The resulting model, while still idealised, can be used to predict variations in velocity, pressure, and cross-sectional flow area as function of position, both upstream and downstream of the rotor disk. Furthermore, by accounting for turbulent entrainment in the wake development, it provides more realistic predictions of thrust and power coefficients for highly-loaded disks.
format Preprint
id arxiv_https___arxiv_org_abs_2510_08213
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Generalised actuator disk theory: wake development with turbulent entrainment
Bastankhah, Majid
Hydon, Peter E.
Shapiro, Carl
Gayme, Dennice F.
Meneveau, Charles
Fluid Dynamics
Classical actuator disk theory, developed more than a century ago, provides an idealised description of turbine rotor performance. It treats a rotor as an infinitesimally-thin permeable disk and applies the governing flow equations over a streamtube encompassing the disk. A well-known limitation of the theory is its assumption of ideal flow downstream of the disk, which restricts its applicability to short downwind distances before turbulence and mixing processes governing the wake evolution take hold. The classical theory also leads to unphysical predictions of thrust and power coefficients for highly-loaded rotors. Turbulent axisymmetric wakes, by contrast, represent an extensively-studied canonical free shear flow with much of the progress and its applications to wind turbines limited to the far-wake dynamics. In this work, we introduce a generalised actuator disk theory based on a hybrid stream-tube and wake control volume, that seamlessly integrates classical actuator disk analysis with wake turbulence modelling at arbitrary distances from the rotor. The resulting model, while still idealised, can be used to predict variations in velocity, pressure, and cross-sectional flow area as function of position, both upstream and downstream of the rotor disk. Furthermore, by accounting for turbulent entrainment in the wake development, it provides more realistic predictions of thrust and power coefficients for highly-loaded disks.
title Generalised actuator disk theory: wake development with turbulent entrainment
topic Fluid Dynamics
url https://arxiv.org/abs/2510.08213