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  Interplay between advective, diffusive and active barriers in (rotating) Rayleigh–Bénard flow

Aksamit, N. O., Hartmann, R., Lohse, D., & Haller, G. (2023). Interplay between advective, diffusive and active barriers in (rotating) Rayleigh–Bénard flow. Journal of Fluid Mechanics, 969: A27. doi:10.1017/jfm.2023.563.

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interplay-between-advective-diffusive-and-active-barriers-in-rotating-rayleigh-benard-flow.pdf (Publisher version), 3MB
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 Creators:
Aksamit, Nikolas O., Author
Hartmann, Robert, Author
Lohse, Detlef1, Author           
Haller, George, Author
Affiliations:
1Max Planck Institute for Dynamics and Self-Organization, Max Planck Society, ou_2063285              

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 Abstract: Our understanding of the material organization of complex fluid flows has benefited recently from mathematical developments in the theory of objective coherent structures. These methods have provided a wealth of approaches that identify transport barriers in three-dimensional (3-D) turbulent flows. Specifically, theoretical advances have been incorporated into numerical algorithms that extract the most influential advective, diffusive and active barriers to transport from data sets in a frame-indifferent fashion. To date, however, there has been very limited investigation into these objectively defined transport barriers in 3-D unsteady flows with complicated spatiotemporal dynamics. Similarly, no systematic comparison of advective, diffusive and active barriers has been carried out in a 3-D flow with both thermally driven and mechanically modified structures. In our study, we utilize simulations of turbulent rotating Rayleigh–Bénard convection to uncover the interplay between advective transport barriers (Lagrangian coherent structures), material barriers to diffusive heat transport, and objective Eulerian barriers to momentum transport. For a range of (inverse) Rossby numbers, we identify each type of barrier and find intriguing relationships between momentum and heat transport that can be related to changes in the relative influence of mechanical and thermal forces. Further connections between bulk behaviours and structure-specific behaviours are also developed.

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Language(s): eng - English
 Dates: 2023-08-222023-08-25
 Publication Status: Issued
 Pages: -
 Publishing info: -
 Table of Contents: -
 Rev. Type: Peer
 Identifiers: DOI: 10.1017/jfm.2023.563
 Degree: -

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Project name : N.O.A. and G.H. acknowledge financial support from Priority Program SPP 1881 (Turbulent Superstructures) of the German National Science Foundation (DFG). N.O.A. acknowledges financial support from the Swiss National Science Foundation (SNSF) Postdoc Mobility Fellowship Project P400P2 199190. R.H. and D.L. acknowledge funding by the ERC Starting Grant UltimateRB (no. 804283/ERC-2018-STG) and ERC Advanced Grant DDD (ERC-2016-ADG).
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Funding organization : -
Project name : UltimateRB
Grant ID : 804283
Funding program : Horizon 2020 (H2020)
Funding organization : European Commission (EC)
Project name : DDD
Grant ID : 740479
Funding program : Horizon 2020 (H2020)
Funding organization : European Commission (EC)

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Title: Journal of Fluid Mechanics
  Other : J. Fluid Mech.
Source Genre: Journal
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Publ. Info: Cambridge : Cambridge University Press
Pages: 28 Volume / Issue: 969 Sequence Number: A27 Start / End Page: - Identifier: ISSN: 0022-1120
CoNE: https://pure.mpg.de/cone/journals/resource/954925340716