Abstract

Particle image velocimetry (PIV) is a well-established technique for determining the flow direction and velocity magnitude of complex flows. This paper presents a methodology for executing this nonintrusive measurement technique to study a scaled-up turbine vane geometry within an annular cascade at engine-relevant conditions. Custom optical tools such as laser delivery probes and imaging inserts were manufactured to mitigate the difficult optical access of the test section and perform planar PIV. With the use of a burst-mode Nd: YAG laser and Photron FASTCAM camera, the frame straddling technique is implemented to enable short time intervals for the collection of image pairs and velocity fields at 10 kHz. Furthermore, custom image processing tools were developed to optimize the contrast and intensity balance of each image pair to maximize particle number and uniformity while removing scattering and background noise. The preprocessing strategies significantly improve the vector yield under challenging alignment, seeding, and illumination conditions. With the optical and software tools developed, planar PIV was conducted in the passage of a high-pressure stator row, at midspan, in an annular cascade. Different Mach and Reynolds number operating conditions were achieved by modifying the temperature and mass flow. With careful spatial calibration, the resultant velocity vector fields are compared with Reynolds-averaged-Navier–Stokes (RANS) simulations of the vane passage with the same geometry and flow conditions. Uncertainty analysis of the experimental results is also presented and discussed, along with prospects for further improvements.

References

1.
Bloxham
,
M. J.
,
2010
, “
A Global Approach to Turbomachinery Flow Control: Loss Reduction Using Endwall Suction and Midspan Vortex Generator Jet Blowing
,”
Ph.D. dissertation
,
The Ohio State University
,
Columbus, OH
.https://www.researchgate.net/publication/234457801_A_global_approach_to_turbomachinery_flow_control_Loss_reduction_using_endwall_suction_and_midspan_vortex_generator_jet_blowing
2.
Marks
,
C.
,
Sondergaard
,
R.
,
Wolff
,
M.
, and
Estevadeordal
,
J.
,
2009
, “
PIV Investigation of a Highly-Loaded LPT Blade Using a Curved Laser Sheet
,”
AIAA
Paper No. 2009-301.10.2514/6.2009-301
3.
Gross
,
A.
,
Marks
,
C. R.
,
Sondergaard
,
R.
,
Bear
,
P. S.
, and
Mitch Wolff
,
J.
,
2018
, “
Experimental and Numerical Characterization of Flow Through Highly Loaded Low-Pressure Turbine Cascade
,”
J. Propul. Power
,
34
(
1
), pp.
27
39
.10.2514/1.B36526
4.
Bear
,
P.
,
Wolff
,
M.
,
Gross
,
A.
,
Marks
,
C. R.
, and
Sondergaard
,
R.
,
2018
, “
Experimental Investigation of Total Pressure Loss Development in a Highly Loaded Low-Pressure Turbine Cascade
,”
ASME J. Turbomach.
,
140
(
3
), p.
031003
.10.1115/1.4038413
5.
Peter
,
J.
,
Pardowitz
,
B.
,
Eck
,
M.
,
Enghardt
,
L.
,
Peitsch
,
D.
, and
Thamsen
,
P.
,
2017
, “
Advanced Stereo High-Speed PIV in an Annular Cascade Without Clearance: Evidences of Rotating Instability
,” Proceedings of the 12th European Conference on Turbomachinery Fluid Dynamics and Thermodynamics, Stockholm, Sweden, Apr. 3–7, Paper No.
ETC2017-205
. https://www.euroturbo.eu/publications/proceedings-papers/etc2017-205/
6.
Woisetschläger
,
J.
, and
Göttlich
,
E.
,
2007
, “
Recent Applications of Particle Image Velocimetry to Flow Research in Thermal Turbomachinery
,”
Particle Image Velocimetry. Topics in Applied Physics
, Vol.
112
, Springer, Berlin, Heidelberg, pp.
311
331
.10.1007/978-3-540-73528-1_16
7.
Paniagua
,
G.
,
Cuadrado
,
D.
,
Saavedra
,
J.
,
Andreoli
,
V.
,
Meyer
,
T.
,
Solano
,
J. P.
,
Herrero
,
R.
,
Meyer
,
S.
, and
Lawrence
,
D.
,
2019
, “
Design of the Purdue Experimental Turbine Aerothermal Laboratory for Optical and Surface Aerothermal Measurements
,”
ASME J. Eng. Gas Turbines Power
,
141
(
1
), p.
012601
.10.1115/1.4040683
8.
Raffel
,
M.
,
Willert
,
C. E.
,
Scarano
,
F.
,
Kähler
,
C. J.
,
Wereley
,
S. T.
, and
Kompenhans
,
J.
,
2018
,
Particle Image Velocimetry: A Practical Guide
,
Springer
,
Cham, Switzerland
.
9.
Smyser
,
M. E.
,
Rahman
,
K. A.
,
Slipchenko
,
M. N.
,
Roy
,
S.
, and
Meyer
,
T. R.
,
2018
, “
Compact Burst-Mode Nd:YAG Laser for kHz–MHz Bandwidth Velocity and Species Measurements
,”
Opt. Lett.
,
43
(
4
), pp.
735
738
.10.1364/OL.43.000735
10.
Lauriola
,
D. K.
,
Gomez
,
M.
,
Meyer
,
T. R.
,
Son
,
S. F.
,
Slipchenko
,
M. N.
, and
Roy
,
S.
,
2019
, “
High Speed Particle Image Velocimetry and Particle Tracking Methods in Reactive and Non-Reactive Flows
,”
AIAA
Paper No. 2019–1605.10.2514/6.2019-1605
You do not currently have access to this content.