Vieweg, Philipp P.; Klünker, Anna; Schumacher, Jörg; Padberg-Gehle, Kathrin:
Lagrangian studies of coherent sets and heat transport in constant heat flux-driven turbulent Rayleigh–Bénard convection
In: European journal of mechanics : B: Fluids, Vol. 103 (2024), pp. 69 - 85
2024Journal article in JournalOA Hybrid
08 Ingenieurwissenschaften » 690 Maschinenbau/Verfahrenstechnik » 6900 Maschinenbau allgemeinTechnische Universität Ilmenau (1992-) » Department of Mechanical Engineering (1992-) » Institute of Thermodynamics and Fluid Dynamics (1992-) » Fachgebiet Strömungsmechanik (2013-)
Title in English:
Lagrangian studies of coherent sets and heat transport in constant heat flux-driven turbulent Rayleigh–Bénard convection
Author:
Vieweg, Philipp P.TU
GND
1272827046
ORCID
0000-0001-7628-9902ORCID iD
SCOPUS
57220950508
Other
connected with university
;
Klünker, Anna
SCOPUS
57218776010
;
Schumacher, JörgTU
GND
118040839
ORCID
0000-0002-1359-4536ORCID iD
SCOPUS
57987926600
SCOPUS
58572615600
SCOPUS
7201769159
Other
connected with university
;
Padberg-Gehle, Kathrin
SCOPUS
35230458500
Other
corresponding author
Year of publication:
2024
Open-Access-Way of publication:
OA Hybrid
Scopus ID
Language of text:
English
Keyword, Topic:
Lagrangian trajectory clustering ; Rayleigh–Bénard convection
Media:
online resources
Type of resource:
Text
Licence type:
CC BY 4.0
Access Rights:
open access
Peer Reviewed:
Yes
Part of statistic:
Yes

Abstract in English:

We explore the mechanisms of heat transfer in a turbulent constant heat flux-driven Rayleigh–Bénard convection flow, which exhibits a hierarchy of flow structures from granules to supergranules. Our computational framework makes use of time-dependent flow networks. These are based on trajectories of Lagrangian tracer particles that are advected in the flow. We identify coherent sets in the Lagrangian frame of reference as those sets of trajectories that stay closely together for an extended time span under the action of the turbulent flow. Depending on the choice of the measure of coherence, sets with different characteristics are detected. First, the application of a recently proposed evolutionary spectral clustering scheme allows us to extract granular coherent features that are shown to contribute significantly less to the global heat transfer than their spatial complements. Moreover, splits and mergers of these (leaking) coherent sets leave spectral footprints. Second, trajectories which exhibit a small node degree in the corresponding network represent objectively highly coherent flow structures and can be related to supergranules as the other stage of the present flow hierarchy. We demonstrate that the supergranular flow structures play a key role in the vertical heat transport and that they exhibit a greater spatial extension than the granular structures obtained from spectral clustering.