Skip to main content
Top
Published in: Experiments in Fluids 6/2007

01-06-2007 | Research Article

Determination of complete velocity gradient tensor by using cinematographic stereoscopic PIV in a turbulent jet

Authors: B. Ganapathisubramani, K. Lakshminarasimhan, N. T. Clemens

Published in: Experiments in Fluids | Issue 6/2007

Log in

Activate our intelligent search to find suitable subject content or patents.

search-config
loading …

Abstract

Cinematographic stereoscopic PIV measurements were performed in the far field of an axisymmetric co-flowing turbulent round jet (Re T ≈ 150, where Re T is the Reynolds number based on Taylor micro scale) to resolve small and intermediate scales of turbulence. The time-resolved three-component PIV measurements were performed in a plane normal to the axis of the jet and the data were converted to quasi-instantaneous three-dimensional (volumetric) data by using Taylor’s hypothesis. The availability of the quasi-three-dimensional data enabled the computation of all nine components of the velocity gradient tensor over a volume. The use of Taylor’s hypothesis was validated by performing a separate set of time-resolved two component “side-view” PIV measurements in a plane along the jet axis. Probability density distributions of the velocity gradients computed using Taylor’s hypothesis show good agreement with those computed directly with the spatially resolved data. The overall spatial structure of the gradients computed directly exhibits excellent similarity with that computed using Taylor’s hypothesis. The accuracy of the velocity gradients computed from the pseudo-volume was assessed by computing the divergence error in the flow field. The root mean square (rms) of the divergence error relative to the magnitude of the velocity gradient tensor was found to be 0.25, which is consistent with results based on other gradient measurement techniques. The velocity gradients, vorticity components and mean dissipation in the self-similar far field of the jet were found to satisfy the axisymmetric isotropy conditions. The divergence error present in the data is attributed to the intrinsic uncertainty associated with performing stereoscopic PIV measurements and not to the use of Taylor’s hypothesis. The divergence error in the data is found to affect areas of low gradient values and manifests as nonphysical values for quantities like the normalized eigenvalues of the strain-rate tensor. However, the high gradients are less affected by the divergence error and so it can be inferred that structural features of regions of intense vorticity and dissipation will be faithfully rendered.

Dont have a licence yet? Then find out more about our products and how to get one now:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Literature
go back to reference Antonia RA, Phan-Thien N, Chambers AJ (1980a) Taylor’s hypothesis and probability density functions of temporal velocity and temperature derivatives in a turbulent flow. J Fluid Mech 100:193–208MATHCrossRefMathSciNet Antonia RA, Phan-Thien N, Chambers AJ (1980a) Taylor’s hypothesis and probability density functions of temporal velocity and temperature derivatives in a turbulent flow. J Fluid Mech 100:193–208MATHCrossRefMathSciNet
go back to reference Antonia RA, Satyaprakash BR, Hussain AKMF (1980b) Measurements of dissipation rate and some other characteristics of turbulent plane and circular jets. Phys Fluids 23:695–700CrossRef Antonia RA, Satyaprakash BR, Hussain AKMF (1980b) Measurements of dissipation rate and some other characteristics of turbulent plane and circular jets. Phys Fluids 23:695–700CrossRef
go back to reference Antonia RA, Satyaprakash BR, Hussain AKMF (1982) Statistics of fine-scale velocity in turbulent plane and circular jets. J Fluid Mech 119:55–89CrossRef Antonia RA, Satyaprakash BR, Hussain AKMF (1982) Statistics of fine-scale velocity in turbulent plane and circular jets. J Fluid Mech 119:55–89CrossRef
go back to reference Antonia RA, Kim J, Browne LWB (1991) Some characteristics of small-scale turbulence in a turbulent duct flow. J Fluid Mech 233:369–388MATHCrossRef Antonia RA, Kim J, Browne LWB (1991) Some characteristics of small-scale turbulence in a turbulent duct flow. J Fluid Mech 233:369–388MATHCrossRef
go back to reference Ashurst WT, Kerstein AR, Kerr RM, Gibson CH (1987) Alignment of vorticity and scalar gradient with strain rate in simulated Navier-Stokes turbulence. Phys Fluids 30:2343–2353CrossRef Ashurst WT, Kerstein AR, Kerr RM, Gibson CH (1987) Alignment of vorticity and scalar gradient with strain rate in simulated Navier-Stokes turbulence. Phys Fluids 30:2343–2353CrossRef
go back to reference Balint JL, Wallace JM, Vukoslavcevic P (1991) The velocity and vorticity vector fields of a turbulent boundary layer. Part 2. Statistical properties. J Fluid Mech 228:53–86 Balint JL, Wallace JM, Vukoslavcevic P (1991) The velocity and vorticity vector fields of a turbulent boundary layer. Part 2. Statistical properties. J Fluid Mech 228:53–86
go back to reference Barnhart DH, Adrian RJ, Meinhart CD, Papen GC (1994) Phase-conjugate holographic system for high resolution particle image velocimetry. Appl Opt 33:7159–7169CrossRef Barnhart DH, Adrian RJ, Meinhart CD, Papen GC (1994) Phase-conjugate holographic system for high resolution particle image velocimetry. Appl Opt 33:7159–7169CrossRef
go back to reference Bjorquist DC (2001) Design and calibration of a stereoscopic particle image velocimetry system. In: Proceedings of the 9th international symposium on application of laser techinques to fluid mechanics Bjorquist DC (2001) Design and calibration of a stereoscopic particle image velocimetry system. In: Proceedings of the 9th international symposium on application of laser techinques to fluid mechanics
go back to reference Dahm WJA, Dibble RW (1988) Combustion stability limits of co-flowing turbulent jet diffusion flames. 26th Aerospace Sciences Meeting, Reno, NV, Jan 11–14 Paper # 1988-538 Dahm WJA, Dibble RW (1988) Combustion stability limits of co-flowing turbulent jet diffusion flames. 26th Aerospace Sciences Meeting, Reno, NV, Jan 11–14 Paper # 1988-538
go back to reference Dahm WJA, Southerland KB (1997) Experimental assessment of Taylor’s hypothesis and its applicability to dissipation estimates in turbulent flows. Phys Fluids 9:2101–2107CrossRef Dahm WJA, Southerland KB (1997) Experimental assessment of Taylor’s hypothesis and its applicability to dissipation estimates in turbulent flows. Phys Fluids 9:2101–2107CrossRef
go back to reference van Doorne CWH, Westerweel J (2007) Measurement of laminar, transitional and turbulent pipe flow using Stereoscopic-PIV. Exp Fluids 42(2):259–279CrossRef van Doorne CWH, Westerweel J (2007) Measurement of laminar, transitional and turbulent pipe flow using Stereoscopic-PIV. Exp Fluids 42(2):259–279CrossRef
go back to reference Elsinga GE, Scarano F, Wieneke B, van Oudheusden BW (2006) Tomographic particle image velocimetry. Exp Fluids 41(6):933–947CrossRef Elsinga GE, Scarano F, Wieneke B, van Oudheusden BW (2006) Tomographic particle image velocimetry. Exp Fluids 41(6):933–947CrossRef
go back to reference Ganapathisubramani B, Longmire EK, Marusic I, Pothos S (2005) Dual-plane PIV technique to measure complete velocity gradient tensor in a turbulent boundary layer. Exp Fluids 39(2):222–231CrossRef Ganapathisubramani B, Longmire EK, Marusic I, Pothos S (2005) Dual-plane PIV technique to measure complete velocity gradient tensor in a turbulent boundary layer. Exp Fluids 39(2):222–231CrossRef
go back to reference Hu H, Saga T, Kobayashi T, Taniguchi N, Yasuki M (2001) Dual-plane stereoscopic particle image velocimetry: system set-up and its application on a lobed jet mixing flow. Exp Fluids 31:277–293CrossRef Hu H, Saga T, Kobayashi T, Taniguchi N, Yasuki M (2001) Dual-plane stereoscopic particle image velocimetry: system set-up and its application on a lobed jet mixing flow. Exp Fluids 31:277–293CrossRef
go back to reference Hussein HJ, Capp S, George WK (1994) Velocity measurements in a high-reynolds number momentum-conserving axisymmetric, turbulent jet. J Fluid Mech 258:31–75CrossRef Hussein HJ, Capp S, George WK (1994) Velocity measurements in a high-reynolds number momentum-conserving axisymmetric, turbulent jet. J Fluid Mech 258:31–75CrossRef
go back to reference Kähler CJ (2004) Investigation of the spatio-temporal flow structure in the buffer region of a turbulent boundary layer by means of multiple plane stereo PIV. Exp Fluids 36:114–130CrossRef Kähler CJ (2004) Investigation of the spatio-temporal flow structure in the buffer region of a turbulent boundary layer by means of multiple plane stereo PIV. Exp Fluids 36:114–130CrossRef
go back to reference Lawson NJ, Wu J (1997) Three dimensional particle image velocimetry: experimental error analysis of a digital angular stereoscopic system. Meas Sci Technol 8:1455–1464CrossRef Lawson NJ, Wu J (1997) Three dimensional particle image velocimetry: experimental error analysis of a digital angular stereoscopic system. Meas Sci Technol 8:1455–1464CrossRef
go back to reference Lund TS, Rogers MM (1994) An improved measure of strain state probability in turbulent flows. Phys Fluids 6(5):1838–1847MATHCrossRef Lund TS, Rogers MM (1994) An improved measure of strain state probability in turbulent flows. Phys Fluids 6(5):1838–1847MATHCrossRef
go back to reference Maas HG, Gruen A, Papantoniou D (1993a) Particle tracking in three dimensional turbulent flows—part I: Photogrammetric determination of particle coordinates. Exp Fluids 15:133–146CrossRef Maas HG, Gruen A, Papantoniou D (1993a) Particle tracking in three dimensional turbulent flows—part I: Photogrammetric determination of particle coordinates. Exp Fluids 15:133–146CrossRef
go back to reference Maas HG, Gruen A, Papantoniou D (1993b) Particle tracking in three dimensional turbulent flows—part II: Particle tracking. Exp Fluids 15:279–294CrossRef Maas HG, Gruen A, Papantoniou D (1993b) Particle tracking in three dimensional turbulent flows—part II: Particle tracking. Exp Fluids 15:279–294CrossRef
go back to reference Matsuda T, Sakakibara J (2005) On the vortical structure in a round jet. Phys Fluids 17-025106:1–11 Matsuda T, Sakakibara J (2005) On the vortical structure in a round jet. Phys Fluids 17-025106:1–11
go back to reference Meng H, Hussain F (1995) Instantaneous flow field in an unstable vortex ring measured by HPIV. Phys Fluids 7:9–11CrossRef Meng H, Hussain F (1995) Instantaneous flow field in an unstable vortex ring measured by HPIV. Phys Fluids 7:9–11CrossRef
go back to reference Mi J, Antonia RA (1994) Corrections to Taylor’s hypothesis in a turbulent circular jet. Phys Fluids 6(4):1548–1552MATHCrossRef Mi J, Antonia RA (1994) Corrections to Taylor’s hypothesis in a turbulent circular jet. Phys Fluids 6(4):1548–1552MATHCrossRef
go back to reference Mi J, Nathan GJ (2003) The influence of probe resolution on the measurement of a passive scalar and its derivatives. Exp Fluids 34:687–696CrossRef Mi J, Nathan GJ (2003) The influence of probe resolution on the measurement of a passive scalar and its derivatives. Exp Fluids 34:687–696CrossRef
go back to reference Mullin JA, Dahm WJA (2006) Dual-plane stereo particle image velocimetry measurements of velocity gradient tensor fields in turbulent shear flow. I. Accuracy assessments. Phys Fluids 18-035101:1–18 Mullin JA, Dahm WJA (2006) Dual-plane stereo particle image velocimetry measurements of velocity gradient tensor fields in turbulent shear flow. I. Accuracy assessments. Phys Fluids 18-035101:1–18
go back to reference Ötügeny MV, Su W, Papadopoulosz G (1998) A new laser-based method for strain rate and vorticity measurements. Meas Sci Technol 9:267–274CrossRef Ötügeny MV, Su W, Papadopoulosz G (1998) A new laser-based method for strain rate and vorticity measurements. Meas Sci Technol 9:267–274CrossRef
go back to reference Piirto M, Eloranta H, Saarenrinne P, Karvinen R (2005) A comparative study of five different PIV interrogation algorithms. Exp Fluids 39(3):573–590CrossRef Piirto M, Eloranta H, Saarenrinne P, Karvinen R (2005) A comparative study of five different PIV interrogation algorithms. Exp Fluids 39(3):573–590CrossRef
go back to reference Pope SB (2000) Turbulent flows. Cambridge University Press, Cambridge, p 106 Pope SB (2000) Turbulent flows. Cambridge University Press, Cambridge, p 106
go back to reference Prasad AK (2000) Stereoscopic particle image velocimetry. Exp Fluids 29(2):103–116CrossRef Prasad AK (2000) Stereoscopic particle image velocimetry. Exp Fluids 29(2):103–116CrossRef
go back to reference Raffel M, Willert C, Kompenhans J (1998) Particle image velocimetry. Springer, Heidelberg Raffel M, Willert C, Kompenhans J (1998) Particle image velocimetry. Springer, Heidelberg
go back to reference Saddoughi SG, Veeravalli SV (1994) Local isotropy in turbulent boundary layers at high reynolds number. J Fluid Mech 268:333–372CrossRef Saddoughi SG, Veeravalli SV (1994) Local isotropy in turbulent boundary layers at high reynolds number. J Fluid Mech 268:333–372CrossRef
go back to reference Scherer JO, Bernal LP (1997) In-line holographic particle image velocimetry for turbulent flows. Appl Opt 36:9309–9318CrossRef Scherer JO, Bernal LP (1997) In-line holographic particle image velocimetry for turbulent flows. Appl Opt 36:9309–9318CrossRef
go back to reference Su LK, Dahm WJA (1996) Scalar imaging velocimetry measurements of the velocity gradient tensor field in turbulent flows. II. Experimental results. Phys Fluids 8:507–521 Su LK, Dahm WJA (1996) Scalar imaging velocimetry measurements of the velocity gradient tensor field in turbulent flows. II. Experimental results. Phys Fluids 8:507–521
go back to reference Tao B, Katz J, Meneveau C (1999) Application of HPIV data of turbulent duct flow for turbulence modelling. In: Proceedings of 3rd ASME/JSME joint fluids engineering conference, July 19–22, San Francisco, CA, USA Tao B, Katz J, Meneveau C (1999) Application of HPIV data of turbulent duct flow for turbulence modelling. In: Proceedings of 3rd ASME/JSME joint fluids engineering conference, July 19–22, San Francisco, CA, USA
go back to reference Tsinober A, Kit E, Dracos T (1992) Experimental investigation of the field of velocity gradients in turbulent flows. J Fluid Mech 242:169–192CrossRef Tsinober A, Kit E, Dracos T (1992) Experimental investigation of the field of velocity gradients in turbulent flows. J Fluid Mech 242:169–192CrossRef
go back to reference Tsurikov M (2003) Experimental investigation of the fine-scale structure in turbulent gas-phase jet flows. PhD thesis, Department of Aerospace Engineering and Engineering Mechanics, University of Texas at Austin, USA Tsurikov M (2003) Experimental investigation of the fine-scale structure in turbulent gas-phase jet flows. PhD thesis, Department of Aerospace Engineering and Engineering Mechanics, University of Texas at Austin, USA
go back to reference Wereley ST, Meinhart CD (2001) Second-order accurate particle image velocimetry. Exp Fluids 31:258–268CrossRef Wereley ST, Meinhart CD (2001) Second-order accurate particle image velocimetry. Exp Fluids 31:258–268CrossRef
go back to reference Westerweel J (1994) Digital particle image velocimetry—theory and applications. Delft University Press Westerweel J (1994) Digital particle image velocimetry—theory and applications. Delft University Press
go back to reference Wieneke B (2005) Stereo-PIV using self-calibration on particle images. Exp Fluids 39(2):267–280CrossRef Wieneke B (2005) Stereo-PIV using self-calibration on particle images. Exp Fluids 39(2):267–280CrossRef
go back to reference Wygnanski I, Fiedler H (1969) Some measurements in the self-preserving jet. J Fluid Mech 38:577–612CrossRef Wygnanski I, Fiedler H (1969) Some measurements in the self-preserving jet. J Fluid Mech 38:577–612CrossRef
go back to reference Wyngaard JC, Tennekes H (1970) Measurements of small-scale structure of turbulence at moderate Reynolds numbers. Phys Fluids 13(8):1962–1969CrossRef Wyngaard JC, Tennekes H (1970) Measurements of small-scale structure of turbulence at moderate Reynolds numbers. Phys Fluids 13(8):1962–1969CrossRef
go back to reference Zang W, Prasad AK (1997) Performance evaluation of a Scheimpflug stereocamera for particle image velocimetry. Appl Opt 36(33):8738–8744 Zang W, Prasad AK (1997) Performance evaluation of a Scheimpflug stereocamera for particle image velocimetry. Appl Opt 36(33):8738–8744
go back to reference Zhang J, Tao B, Katz J (1997) Turbulent flow measurement in a square duct with hybrid holographic PIV. Exp Fluids 23:373–381CrossRef Zhang J, Tao B, Katz J (1997) Turbulent flow measurement in a square duct with hybrid holographic PIV. Exp Fluids 23:373–381CrossRef
Metadata
Title
Determination of complete velocity gradient tensor by using cinematographic stereoscopic PIV in a turbulent jet
Authors
B. Ganapathisubramani
K. Lakshminarasimhan
N. T. Clemens
Publication date
01-06-2007
Publisher
Springer-Verlag
Published in
Experiments in Fluids / Issue 6/2007
Print ISSN: 0723-4864
Electronic ISSN: 1432-1114
DOI
https://doi.org/10.1007/s00348-007-0303-5

Other articles of this Issue 6/2007

Experiments in Fluids 6/2007 Go to the issue

Premium Partners