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Research Article

Evolution of the invariants of the velocity gradient tensor in the developing region of a round jet using tomographic PIV

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Pages 640-655 | Received 28 Jan 2021, Accepted 01 Jul 2021, Published online: 27 Jul 2021

References

  • Wygnanski I, Fiedler H. Some measurements in the self-preserving jet. J Fluid Mech. 1969;38:577–612.
  • Matsuda T, Sakakibara J. On the vortical structure in a round jet. Phys Fluids. 2005;17:1–11.
  • Uddin M, Pollard A. Self-similarity of coflowing jets: the virtual origin. Phys Fluids. 2007;19(6):68103/1–68103/4.
  • Wu N-n, Sakai Y, Nagata K, et al. Dynamics and geometry of developing planar jets based on the invariants of the velocity gradient tensor. J Hydrodynam. 2015;27(6):894–906.
  • Breda M, Buxton ORH. Influence of coherent structures on the evolution of an axisymmetric turbulent jet. Phys Fluids. 2018;30:035109.
  • Elsinga GE, Scarano F, Wieneke B, et al. Tomographic particle image velocimetry. Exp Fluids. 2006;41:933–947.
  • Hutchins N, Chauhan K, Marusic I, et al. Towards reconciling the large-scale structure of turbulent boundary layers in the atmosphere and laboratory. Boundary Layer Meteorol. 2012;145(2):273–306.
  • Harun Z, Lotfy E. Generation, evolution, and characterization of turbulence coherent structures, Turbulence and Related Phenomena, 2018, InTechOpen; 2018.
  • Mohamad TI, Harrison M, Jermy M, et al. The structure of the high-pressure gas jet from a spark plug fuel injector for direct fuel injection. J Vis. 2010;13(2):121–131.
  • Jiménez-Robles AM, Ortega-Sánchez M, Losada MA. Effects of basin bottom slope on jet hydrodynamics and river mouth bar formation. J Geophys Res Earth Surf. 2016;121:1110–1133.
  • Abdul Samad A, Ali CA, Mohamed KR. Delta zoning based on sediment dispersal in Pahang river delta. AIP Conf Proc. 2013;1571:438.
  • Brown GL, Roshko A. On density effects and large structure in turbulent mixing layers. J Fluid Mech. 1974;64:775–816.
  • Yule AJ. Large-scale structure in the mixing layer of a round jet. J Fluid Mech. 1978;89:413–432.
  • Martin JE, Meiburg E. Numerical investigation of three-dimensionally evolving jet subject to axisymmetric and azimuthal perturbations. J Fluid Mech. 1991;230:271–318.
  • Liepman D, Gharib M. The role of streamwise vorticity in the near-field entrainment of round jets. J Fluid Mech. 1992;245:643–668.
  • Ganapathisubramani B, Longmire EK, Marusic I. Investigation of three dimensionality in the near field of a round jet using stereo PIV. J Turbulence. 2002;3:1–12.
  • Buxton ORH, Breda M, Chen X. Invariants of the velocity-gradient tensor in a spatially developing inhomogeneous turbulent flow. J Fluid Mech. 2017;817:1–20.
  • Frisch U. Turbulence: The legacy of A. N. Kolmogorov. Boulder, Colorado: Cambridge University Press; 1995. DOI:https://doi.org/10.1017/CBO9781139170666.
  • Sagaut P, Cambon C. Homogeneous turbulence dynamics. Cambridge: Cambridge University Press; 2008.
  • Chong MS, Perry AE, Cantwell BJ. A general classification of three-dimensional flow fields. Phys Fluids A. 1990;2:765–777.
  • Soria J, Sondergaard R, Cantwell BJ, et al. A study of the fine-scale motions of incompressible time-developing mixing layers. Phys Fluids. 1994;6:871–884.
  • Blackburn HM, Mansour NN, Cantwell BJ. Topology of fine-scale motions in turbulent channel flow. J Fluid Mech. 1996;310:269–292.
  • Andreopoulos Y, Honkan A. An experimental study of the dissipative and vortical motion in turbulent boundary layers. J Fluid Mech. 2001;439:131–163.
  • Elsinga GE, Marusic I. Evolution and lifetimes of flow topology in a turbulent boundary layer. Phys Fluids. 2010;22:015102.
  • Willert C, Raffel M, Kompenhans J, et al. Recent applications of particle image velocimetry in aerodynamic research. Flow Meas Instrum. 1996;7(3–4):247–256.
  • Akbar Batcha MA, Norizan TA, Abidin ZZ, et al. Vortex measurement at bell-shaped pump inlet using particle image velocimetry. Jurnal Kejuruteraan. 2018;30(2):209–217.
  • Stanislas M, Kompenhans J, Westerweel J. Particle image velocimetry, progress towards industrial application. The Netherlands: Springer Netherlands; 2000.
  • Scarano F. Tomographic PIV: principles and practice. Exp Fluids. 2013;24:012001.
  • Braun M, Schröder W, Klaas M. High-speed tomographic PIV measurements in a DISI engine. Exp Fluids. 2019;60:146.
  • Khashehchi M, Harun Z. Accuracy of tomographic particle image velocimetry data on a turbulent round jet. Int J Heat Fluid Flow. 2019;77:61–72.
  • Khashehchi M, Elsinga GE, Ooi A, et al. Studying invariants of the velocity gradient tensor of a round turbulent jet across the turbulent/nonturbulent interface using TPIV. 15th International symposium on applications of laser techniques to fluid mechanics; 2010; Lisbon, Portugal.
  • Khashehchi M, Ooi A, Soria J, et al. Evolution of the turbulent/non-turbulent interface of an axisymmetric turbulent jet. Exp Fluids. 2013;54(1):1–12.
  • Atkinson C, Soria J. An efficient simultaneous reconstruction technique for tomographic particle image velocimetry. Exp Fluids. 2009;47:553–568.
  • Discetti S. Tomographic particle image velocimetry developments and applications to turbulent flows. [PhD thesis]. Università Degli Studi Di Napoli “Federico Ii” Dipartimento Di Ingegneria Industriale; 2013.
  • Scarano F, Riethmuller ML. Advances in iterative multigrid PIV image processing. Exp Fluids. 2000;29:S51–S60.
  • Westerweel J, Scarano F. Universal outlier detection for PIV data. Exp Fluids. 2005;39:1096–1100.
  • Chong MS, Perry E, Cantwell B. A general classification of three-dimensional flow fields simulations of turbulence. Phys Fluids A. 1990;2:765–777.
  • Ooi A, Martin J, Soria J, et al. A study of the evolution and characteristics of the invariants of the velocity-gradient tensor in isotropic turbulence. J Fluid Mech. 1999;381:141–174.
  • Da-Silva BC, Pereira JCF. Invariants of the velocity-gradient, rate-of-strain, and rate-of-rotation tensors across the turbulent/ non-turbulent interface in jets. Phys Fluids. 2008;20:055101.
  • Soria J. An investigation of the near wake of a circular cylinder using a video-based digital cross-correlation particle image velocimetry technique. Exp Thermal Fluid Sci. 1996;12:221–233.

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