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Research Article

Estimation of characteristic vortex structures in complex flow

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Pages 517-534 | Received 03 Mar 2020, Accepted 14 May 2021, Published online: 28 May 2021

References

  • Chong MS, Perry AE, Cantwell BJ. A general classification of three-dimensional flow fields. Phys Fluids A Fluid Dynam. 1990;2(5):765–777.
  • Hussain AF. Coherent structures and turbulence. J Fluid Mech. 1986;173:303–356.
  • Perry AE, Chong MS. A description of eddying motions and flow patterns using critical-point concepts. Annu Rev Fluid Mech. 1987;19(1):125–155.
  • Robinson SK. Coherent motions in the turbulent boundary layer. Annu Rev Fluid Mech. 1991;23(1):601–639.
  • Chakraborty P, Balachandar S, Adrian RJ. On the relationships between local vortex identification schemes. J Fluid Mech. 2005;535:189–214.
  • Perret L. Piv investigation of the shear layer vortices in the near wake of a circular cylinder. Exp Fluids. 2009;47(4–5):789.
  • Jiménez J. Coherent structures in wall-bounded turbulence. J Fluid Mech. 2018;842
  • Tian S, Gao Y, Dong X, et al. Definitions of vortex vector and vortex. JFM. 2018;849:312–339.
  • Tian S, Fu H, Xia J, et al. A vortex identification method based on local fluid rotation. Phys Fluids. 2020;32(1):015104.
  • Epps B. Review of vortex identification methods. 55th AIAA aerospace sciences meeting; 2017. p. 0989.
  • Kong D, Zhang K, Schubert G, et al. Origin of jupiter's cloud-level zonal winds remains a puzzle even after juno. Proc Natl Acad. 2018;115(34):8499–8504.
  • Dabbagh F, Trias F, Gorobets A, et al. On the evolution of flow topology in turbulent Rayleigh–Bénard convection. Phys Fluids. 2016;28(11):115105.
  • Pandey A, Scheel JD, Schumacher J. Turbulent superstructures in Rayleigh–Bénard convection. Nat Commun. 2018;9(1):1–11.
  • Strogatz SH. Nonlinear dynamics and chaos: with applications to physics, biology, chemistry, and engineering. CRC Press; 2018.
  • Kolář V, Šístek J. Corotational and compressibility aspects leading to a modification of the vortex-identification q-criterion. AIAA J. 2015;53(8):2406–2410.
  • Yao J, Hussain F. Toward vortex identification based on local pressure-minimum criterion in compressible and variable density flows. J Fluid Mech. 2018;850:5–17.
  • Gao Y, Liu C. Rortex and comparison with eigenvalue-based vortex identification criteria. Phys Fluids. 2018;30(8):085107.
  • Ault JT, Chen KK, Stone HA. Downstream decay of fully developed dean flow. J Fluid Mech. 2015;777:219–244.
  • Chandrasekhar S. Hydrodynamic and hydromagnetic stability. Courier Corporation; 2013.
  • Oruba L, Davidson P, Dormy E. Formation of eyes in large-scale cyclonic vortices. Phys Rev Fluids. 2018;3(1):013502.
  • Atkinson J, Davidson P, Perry J. Dynamics of a trapped vortex in rotating convection. Phys Rev Fluids. 2019;4(7):074701.
  • Canuto V. Large eddy simulation of turbulence: A subgrid scale model including shear, vorticity, rotation, and buoyancy. Astrophys J. 1994;428:729–752.
  • Wang BC, Bergstrom DJ. A dynamic nonlinear subgrid-scale stress model. Phys Fluids. 2005;17(3):035109.
  • Bose ST, Park GI. Wall-modeled large-eddy simulation for complex turbulent flows. Annu Rev Fluid Mech. 2018;50:535–561.
  • Park GI, Moin P. An improved dynamic non-equilibrium wall-model for large eddy simulation. Phys Fluids. 2014;26(1):37–48.
  • Shur ML, Spalart PR, Strelets MK, et al. A hybrid rans-les approach with delayed-des and wall-modelled les capabilities. Int J Heat Fluid Flow. 2008;29(6):1638–1649.
  • Moser RD, Kim J, Mansour NN. Direct numerical simulation of turbulent channel flow up to re τ= 590. Phys Fluids. 1999;11(4):943–945.
  • Adrian RJ. Hairpin vortex organization in wall turbulence. Phys Fluids. 2007;19(4):041301.
  • Banerjee C, Chaudhury K, Urankara S, et al. Vortex structure in a cylindrical cyclone. Proceedings of the 25th National and 3rd International ISHMT-ASTFE Heat and Mass Transfer Conference (IHMTC-2019); 2019.
  • Gupta A, Kumar R. Three-dimensional turbulent swirling flow in a cylinder: experiments and computations. Int J Heat Fluid Flow. 2007;28(2):249–261.
  • Ferrara G, Bozzato P, Chine B. Performance of conical and cylindrical separately vessels in dynamic dense-medium separation processes. Mining Metall Explor. 1999;16(2):8–15.
  • Christov IC, Stone HA. Shear dispersion in dense granular flows. Granular Matter. 2014;16(4):509–515.
  • Fan Y, Umbanhowar PB, Ottino JM, et al. Shear-rate-independent diffusion in granular flows. Phys Rev Lett. 2015;115(8):088001.

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