Self-sustaining oscillations of flow over ducted cavities and in corrugated pipes are a known source of tonal noise and excessive vibration in industrial applications. Corrugated pipes can be modeled as a series of axisymmetric cavities. In the current study, the aero-acoustic sources generated by one-, two-, and three-cavity configurations have been experimentally investigated by means of the standing wave method (SWM) for a wide range of Strouhal numbers and acoustic excitation levels. The source strength is found to increase in a nonlinear manner with increasing the number of cavities. Moreover, the self-excited acoustic resonances of the same cavity combinations are investigated. The source characteristics are compared with the observed lock-in range from the self-excited experiments. A prediction model is also developed to utilize the measured source characteristics for estimating the amplitude of the cavities self-sustained oscillations. The self-excited experimental data are used to assess the effect of acoustic absorption at the cavity edges. This absorption is found to be substantial and must be accounted for in the prediction model. When the model is supplemented with appropriate loss coefficients, it predicts fairly well the pulsation amplitude within the resonance lock-in range of the studied multiple cavity configurations.

References

1.
Belfroid
,
S.
,
Shatto
,
D.
, and
Peters
,
M.
,
2007
, “
Flow Induced Pulsations Caused by Corrugated Tubes
,”
ASME
Paper No. PVP2007-26503.
2.
Stel
,
H.
,
Morales
,
R.
,
Franco
,
A.
,
Junqueira
,
S.
,
Erthal
,
R.
, and
Gonçalves
,
M.
,
2010
, “
Numerical and Experimental Analysis of Turbulent Flow in Corrugated Pipes
,”
ASME J. Fluids Eng.
,
132
(
7
), p.
071203
.
3.
Popiel
,
C.
,
Kozak
,
M.
,
Małecka
,
J.
, and
Michalak
,
A.
,
2013
, “
Friction Factor for Transient Flow in Transverse Corrugated Pipes
,”
ASME J. Fluids Eng.
,
135
(
7
), p.
074501
.
4.
Rockwell
,
D.
, and
Naudascher
,
E.
,
1978
, “
Review—Self-Sustaining Oscillations of Flow Past Cavities
,”
ASME J. Fluids Eng.
,
100
(
2
), pp.
152
165
.
5.
Bruggeman
,
J.
,
Hirschberg
,
A.
,
van Dongen
,
M.
,
Wijnands
,
A.
, and
Gorter
,
J.
,
1989
, “
Flow Induced Pulsations in Gas Transport Systems: Analysis of the Influence of Closed Side Branches
,”
ASME J. Fluids Eng.
,
111
(
4
), pp.
484
491
.
6.
Kriesels
,
P.
,
Peters
,
M.
,
Hirschberg
,
A.
,
Wijnands
,
A.
,
Iafrati
,
A.
,
Riccardi
,
G.
,
Piva
,
R.
, and
Bruggeman
,
J.
,
1995
, “
High Amplitude Vortex-Induced Pulsations in a Gas Transport System
,”
J. Sound Vib.
,
184
(
2
), pp.
343
368
.
7.
Radavich
,
P.
,
Selamet
,
A.
, and
Novak
,
J.
,
2001
, “
A Computational Approach for Flow–Acoustic Coupling in Closed Side Branches
,”
J. Acoust. Soc. Am.
,
109
(
4
), pp.
1343
1353
.
8.
Dequand
,
S.
,
Hulshoff
,
S.
, and
Hirschberg
,
A.
,
2003
, “
Self-Sustained Oscillations in a Closed Side Branch System
,”
J. Sound Vib.
,
265
(
2
), pp.
359
386
.
9.
Nakiboğlu
,
G.
,
Manders
,
H.
, and
Hirschberg
,
A.
,
2012
, “
Aeroacoustic Power Generated by a Compact Axisymmetric Cavity: Prediction of Self-Sustained Oscillation and Influence of the Depth
,”
J. Fluid Mech.
,
703
, pp.
163
191
.
10.
Golliard
,
J.
,
González-Díez
,
N.
,
Belfroid
,
S.
,
Nakiboğlu
,
G.
, and
Hirschberg
,
A.
,
2013
, “
U-RANS Model for the Prediction of the Acoustic Sound Power Generated in a Whistling Corrugated Pipe
,”
ASME
Paper No. PVP2013-97385.
11.
Nair
,
K.
, and
Sarkar
,
S.
,
2016
, “
Large Eddy Simulation of Self-Sustained Cavity Oscillation for Subsonic and Supersonic Flows
,”
ASME J. Fluids Eng.
,
139
(
1
), p.
011102
.
12.
Rajavel
,
B.
, and
Prasad
,
M.
,
2014
, “
Parametric Studies on Acoustics of Corrugated Tubes Using Large Eddy Simulation (LES)
,”
Noise Control Eng. J.
,
62
(
4
), pp.
218
231
.
13.
Williams
,
J.
, and
Hawkings
,
D.
,
1969
, “
Sound Generation by Turbulence and Surfaces in Arbitrary Motion
,”
Philos. Trans. R. Soc. London A
,
264
(
1151
), pp.
321
342
.
14.
Oshkai
,
P.
,
Yan
,
T.
,
Velikorodny
,
A.
, and
VanCaeseele
,
S.
,
2008
, “
Acoustic Power Calculation in Deep Cavity Flows: A Semiempirical Approach
,”
ASME J. Fluids Eng.
,
130
(
5
), p.
051203
.
15.
Mohamed
,
S.
, and
Ziada
,
S.
,
2014
, “
PIV Measurements of Aeroacoustic Sources of a Shallow Cavity in a Pipeline
,”
ASME
Paper No. PVP2014-28508.
16.
Graf
,
H.
, and
Ziada
,
S.
,
1992
, “
Flow Induced Acoustic Resonance in Closed Side Branches: An Experimental Determination of the Excitation Source
,”
International Symposium on Flow-Induced Vibration and Noise
, Anaheim, CA, Nov. 8–13, p.
63
.
17.
Graf
,
H.
, and
Ziada
,
S.
,
2010
, “
Excitation Source of a Side-Branch Shear Layer
,”
J. Sound Vib.
,
329
(
14
), pp.
2825
2842
.
18.
Mohamed
,
S.
,
Graf
,
H.
, and
Ziada
,
S.
,
2011
, “
Aeroacoustic Source of a Shallow Cavity in a Pipeline
,”
ASME
Paper No. PVP2011-57437.
19.
Howe
,
M.
,
1980
, “
The Dissipation of Sound at an Edge
,”
J. Sound Vib.
,
70
(
3
), pp.
407
411
.
20.
Nakiboğlu
,
G.
, and
Hirschberg
,
A.
,
2012
, “
Aeroacoustic Power Generated by Multiple Compact Axisymmetric Cavities: Effect of Hydrodynamic Interference on the Sound Production
,”
Phys. Fluids
,
24
(
6
), p.
67101
.
21.
Nakiboğlu
,
G.
,
Rudenko
,
O.
, and
Hirschberg
,
A.
,
2013
, “
Hydrodynamic Interference in Corrugated Pipes
,” 20th International Congress on Sound and Vibration (
ICSV
), Bangkok, Thailand, July 7–11, pp.
865
872
.
22.
Doherty
,
J.
,
Ngan
,
P.
,
Monty
,
J.
, and
Chong
,
M.
,
2007
, “
The Development of Turbulent Pipe Flow
,”
16th Australasian Fluid Mechanics Conference
, Gold Coast, Australia, Dec. 2–7, pp.
266
270
.
23.
White
,
F.
,
2001
,
Fluid Mechanics
,
McGraw-Hill
, Boston, MA.
24.
Mohamed
,
S.
,
2015
, “
Sound Waves Excitation by Flow in a Pipe Housing a Shallow Cavity
,”
Ph.D. thesis
, McMaster University, Hamilton, ON, Canada.
25.
Keefe
,
D.
,
1984
, “
Acoustical Wave Propagation in Cylindrical Ducts: Transmission Line Parameter Approximations for Isothermal and Nonisothermal Boundary Conditions
,”
J. Acoust. Soc. Am.
,
75
(
1
), pp.
58
62
.
26.
Munjal
,
M.
,
1987
,
Acoustics of Ducts and Mufflers With Application to Exhaust and Ventilation System Design
,
Wiley
, New York.
27.
Davies
,
P.
,
Coelho
,
J.
, and
Bhattacharya
,
M.
,
1980
, “
Reflection Coefficients for an Unflanged Pipe With Flow
,”
J. Sound Vib.
,
72
(
4
), pp.
543
546
.
28.
Levine
,
H.
, and
Schwinger
,
J.
,
1948
, “
On the Radiation of Sound From an Unflanged Circular Pipe
,”
Phys. Rev.
,
73
(
4
), pp.
383
406
.
29.
Davies
,
P.
,
1981
, “
Flow-Acoustic Coupling in Ducts
,”
J. Sound Vib.
,
77
(
2
), pp.
191
209
.
30.
Davies
,
P.
,
1988
, “
Practical Flow Duct Acoustics
,”
J. Sound Vib.
,
124
(
1
), pp.
91
115
.
31.
Munjal
,
M.
, and
Doige
,
A.
,
1990
, “
The Two-Microphone Method Incorporating the Effects of Mean Flow and Acoustic Damping
,”
J. Sound Vib.
,
137
(
1
), pp.
135
138
.
32.
Kergomard
,
J.
, and
Garcia
,
A.
,
1987
, “
Simple Discontinuities in Acoustic Waveguides at Low Frequencies: Critical Analysis and Formulae
,”
J. Sound Vib.
,
114
(
3
), pp.
465
479
.
33.
Ronneberger
,
D.
,
1967
, “
Experimentelle Untersuchungen Zum Akustischen Reflexionsfaktor Von Unstetigen Querschnittsänderungen in Einem Luftdurchströmten Rohr
,”
Acustica
,
19
(4), pp.
222
235
.
34.
Boij
,
S.
, and
Nilsson
,
B.
,
2006
, “
Scattering and Absorption of Sound at Flow Duct Expansions
,”
J. Sound Vib.
,
289
(
3
), pp.
577
594
.
35.
Dupere
,
I. D. J.
, and
Dowling
,
A. P.
,
2001
, “
The Absorption of Sound Near Abrupt Axisymmetric Area Expansions
,”
J. Sound Vib.
,
239
(
4
), pp.
709
730
.
36.
Kline
,
S.
, and
McClintock
,
F.
,
1953
, “
Describing Uncertainties in Single-Sample Experiments
,”
Mech. Eng.
,
75
, pp.
3
8
.
37.
Coleman
,
H.
, and
Steele
,
W.
,
2009
,
Experimentation, Validation, and Uncertainty Analysis for Engineers
,
Wiley
, Hoboken, NJ.
38.
Mohamed
,
S.
, and
Ziada
,
S.
,
2015
, “
Effect of Cavity Volume on the Flow-Excited Acoustic Resonance of a Shallow Cavity in a Pipe-Line
,”
ASME
Paper No. PVP2015-45205.
39.
Ziada
,
S.
,
1994
, “
A Flow Visualization Study of Flow-Acoustic Coupling at the Mouth of a Resonant Side-Branch
,”
J. Fluids Struct.
,
8
(
4
), pp.
391
416
.
40.
Bruggeman
,
J.
,
Hirschberg
,
A.
,
Van Dongen
,
M.
,
Wijnands
,
A.
, and
Gorter
,
J.
,
1991
, “
Self-Sustained Aero-Acoustic Pulsations in Gas Transport Systems: Experimental Study of the Influence of Closed Side Branches
,”
J. Sound Vib.
,
150
(
3
), pp.
371
393
.
41.
Peters
,
M.
,
1993
, “
Aeroacoustic Sources in Internal Flows
,”
Ph.D. thesis,
Eindhoven University of Technology, Eindhoven, The Netherlands.
42.
Tonon
,
D.
,
Hirschberg
,
A.
,
Golliard
,
J.
, and
Ziada
,
S.
,
2011
, “
Aeroacoustics of Pipe Systems With Closed Branches
,”
Int. J. Aeroacoustics
,
10
(
2–3
), pp.
201
275
.
You do not currently have access to this content.