Multiscale analysis of the topological invariants in the logarithmic region of turbulent channels at a friction Reynolds number of 932

Lozano Durán, Adrián ORCID: https://orcid.org/0000-0001-9306-0261, Holzner, Markus ORCID: https://orcid.org/0000-0003-2702-8612 and Jiménez Sendín, Javier ORCID: https://orcid.org/0000-0003-0755-843X (2016). Multiscale analysis of the topological invariants in the logarithmic region of turbulent channels at a friction Reynolds number of 932. "Journal of Fluid Mechanics", v. 803 ; pp. 356-394. ISSN 00221120. https://doi.org/10.1017/jfm.2016.504.

Descripción

Título: Multiscale analysis of the topological invariants in the logarithmic region of turbulent channels at a friction Reynolds number of 932
Autor/es:
Tipo de Documento: Artículo
Título de Revista/Publicación: Journal of Fluid Mechanics
Fecha: 30 Agosto 2016
ISSN: 00221120
Volumen: 803
Materias:
ODS:
Palabras Clave Informales: Boundary-Layer; Dynamics; Evolution; Fine-Scale Motions; Flow; Homogeneous Turbulence; Isotropic Turbulence; Statistics; Turbulence Simulation; Turbulent Boundary Layers; Turbulent Flows; Velocity-Gradient Tensor; Vorticity
Escuela: E.T.S. de Ingeniería Aeronáutica y del Espacio (UPM)
Departamento: Mecánica de Fluidos y Propulsión Aeroespacial
Licencias Creative Commons: Reconocimiento - Sin obra derivada - No comercial

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Resumen

The invariants of the velocity gradient tensor, R and Q, and their enstrophy and strain components are studied in the logarithmic layer of an incompressible turbulent channel flow. The velocities are filtered in the three spatial directions and the results are analysed at different scales. We show that the R-Q plane does not capture the changes undergone by the flow as the filter width increases, and that the enstrophy/enstrophy-production and strain/strain-production planes represent better choices. We also show that the conditional mean trajectories may differ significantly from the instantaneous behaviour of the flow since they are the result of an averaging process where the mean is 3-5 times smaller than the corresponding standard deviation. The orbital periods in the R-Q plane are shown to he independent of the intensity of the events, and of the same order of magnitude as those in the enstrophy/enstrophy-production and strain/strain-production planes. Our final goal is to test whether the dynamics of the flow is self-similar in the inertial range, and the answer turns out to be that it is not. The mean shear is found to be responsible for the absence of self-similarity and progressively controls the dynamics of the eddies observed as the filter width increases. However, a self-similar behaviour emerges when the calculations are repeated for the fluctuating velocity gradient tensor. Finally, the turbulent cascade in terms of vortex stretching is considered by computing the alignment of the vorticity at a given scale with the strain at a different one. These results generally support a non-negligible role of the phenomenological energy-cascade model formulated in terms of vortex stretching.

Proyectos asociados

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Código
Acrónimo
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Horizonte 2020
669505
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ID de Registro: 88097
Identificador DC: https://oa.upm.es/88097/
Identificador OAI: oai:oa.upm.es:88097
URL Portal Científico: https://portalcientifico.upm.es/es/ipublic/item/5494010
Identificador DOI: 10.1017/jfm.2016.504
URL Oficial: https://www.cambridge.org/core/journals/journal-of...
Depositado por: iMarina Portal Científico
Depositado el: 27 Feb 2025 13:09
Ultima Modificación: 12 Mar 2025 12:08