An experimental program was carried out by subjecting normal square finned tube arrays to gradually increasing water cross flows. In all, total six tube arrays were tested—three having pitch ratio 2.1 and remaining three of pitch ratio 2.6. Under each category, three arrays tested were: plain array, coarse finned array, and fine finned array. The objective of the research was to determine the fluid velocity at which each of the six arrays becomes fluidelastically unstable. The experiments were started with tests on plain arrays to establish them as a datum case by comparing their test results with published results on plain arrays having lower pitch ratios. This was then followed by testing of finned arrays to study the effect of fins on the instability threshold. The tubes were subjected to a gradually increasing flow rate of water from 10 m3/h to the point where instability was reached. The results of the present work are compared with author's earlier published results for parallel triangular arrays in water. The research outcomes help to study the effect of pitch ratio, tube array pattern, and fin density on the instability threshold. The results show that instability is delayed due to the addition of the fins. It is also concluded that normal square arrays should be preferred over parallel triangular arrays to avoid fluidelastic vibrations. The vortex shedding behavior studied for all the arrays shows that small peaks before fluidelastic instability are due to vortex shedding.

References

1.
Blevins
,
R. D.
,
1990
,
Flow-Induced Vibrations
, 2nd ed.,
Von Nostrand Reinhold
,
New York
.
2.
Ziada
,
S.
,
2006
, “
Vorticity Shedding and Acoustic Resonance in Tube Bundles
,”
J. Braz. Soc. Mech. Sci. Eng.
,
28
(
2
), pp.
186
199
.
3.
Weaver
,
D. S.
, and
El-Kashlan
,
M.
,
1981
, “
On the Number of Tube Rows Required to Study Cross Flow-Induced Vibrations in Tube Banks
,”
J. Sound Vib.
,
75
(
2
), pp.
265
273
.
4.
Chen
,
S. S.
, and
Jendrzejcyk
,
J. A.
,
1981
, “
Experiments on Fluidelastic Instability in Tube Banks Subjected to Liquid Cross-Flow
,”
J. Sound Vib.
,
78
(
3
), pp.
355
381
.
5.
Mitra
,
D.
,
Dhir
,
V. K.
, and
Catton
,
I.
,
2009
, “
Fluidelastic Instability in Tube Arrays Subjected to Air-Water and Steam Water Cross Flow
,”
J. Fluids Struct.
,
25
(
7
), pp.
1213
1235
.
6.
Kienböck
,
M.
,
1982
, “
Vibration Characteristics of Finned Tubes With Small Fins
,”
VGB Kraftwerkstech.
,
62
(
7
), pp.
498
506
.
7.
Mair
,
W. A.
,
Jones
,
P. D. F.
, and
Palmer
,
R. K. W.
,
1975
, “
Vortex Shedding From Finned Tubes
,”
J. Sound Vib.
,
39
(
3
), pp.
293
296
.
8.
Lumsden
,
R. H.
, and
Weaver
,
D. S.
,
2010
, “
The Effect of Fins on Fluidelastic Instability in In-Line and Rotated Square Tube Arrays
,”
ASME J. Pressure Vessel Technol.
,
132
(
5
), p.
051302
.
9.
Wang
,
J.
, and
Weaver
,
D. S.
,
2012
, “
Fluidelastic Instability in Normal and Parallel Triangular Arrays of Finned Tubes
,”
ASME J. Pressure Vessel Technol.
,
134
(
2
), p.
021302
.
10.
Desai
,
S. R.
, and
Pavitran
,
S.
,
2016
, “
Theoretical Analysis of Fluidelastic Vibrations of Finned Tube Arrays Subjected to Cross Flow of Water
,”
J. Vib. Eng. Technol.
,
4
(
1
), pp.
21
29
.https://www.researchgate.net/publication/299391881_Theoretical_analysis_of_fluid_elastic_vibrations_of_finned_tube_arrays_subjected_to_cross_flow_of_water
11.
Desai
,
S. R.
, and
Pavitran
,
S.
,
2018
, “
The Effect of Fin Pitch on Fluidelastic Instability of Tube Arrays Subjected to Cross Flow of Water
,”
J. Inst. Eng. (India): Ser. C
,
99
(
1
), pp.
53
61
.
12.
Desai
,
S. R.
, and
Pavitran
,
S.
,
2017
, “
Experimental Investigation on Vortex Shedding and Fluidelastic Instability in Finned Tube Arrays Subjected to Water Cross Flow
,”
ASME J. Pressure Vessel Technol.
,
139
(
5
), p.
051301
.
13.
Arshad
,
H.
,
Khushnood
,
S.
, and
Nizam
,
L. A.
,
2018
, “
Effect of Fin Geometry on Flow-Induced Vibration Response of a Finned Tube in a Bundle
,”
J. Appl. Fluid Mech.
,
11
(
4
), pp.
1143
1152
.
14.
Alziadeh
,
M.
, and
Mohany
,
A.
,
2018
, “
Near-Wake Characteristics and Acoustic Resonance Excitation of Crimped Spirally Finned Cylinders in Cross Flow
,”
ASME J. Pressure Vessel Technol.
,
140
(
5
), p.
051302
.
15.
Connors
,
H. J.
, Jr
,
1970
, “
Fluid-Elastic Vibration of Tube Arrays Excited by Cross-Flow
,”
Flow-Induced Vibration in Heat Exchangers
,
ASME
,
New York
, pp.
42
56
.
16.
Price
,
S. J.
,
2001
, “
An Investigation on the Use of Connors' Equation to Predict Fluidelastic Instability in Cylinder Arrays
,”
ASME J. Pressure Vessel Technol.
,
123
(
4
), pp.
448
453
.
17.
Pettigrew
,
M. J.
,
Taylor
,
C. E.
,
Janzen
,
V. P.
, and
Whan
,
T.
,
2002
, “
Vibration Behavior of Rotated Triangular Tube Bundles in Two-Phase Cross Flows
,”
ASME J. Pressure Vessel Technol.
,
124
(
2
), pp.
144
153
.
18.
Figliola Richard
,
S.
, and
Beasley Donald
,
E.
,
2000
,
Theory and Design for Mechanical Measurements
, 3rd ed.,
Wiley
,
Singapore
.
19.
Beckwith
,
T. G.
,
Lewis
,
B. N.
, and
Marangoni Roy
,
D.
,
1998
,
Mechanical Measurements
, 1st ed.,
Narosa Publishing House
,
Delhi, India
.
20.
Weaver
,
D. S.
,
Fitzpatrick
,
J. A.
, and
El-Kashlan
,
M.
,
1987
, “
Strouhal Numbers for Heat Exchanger Tube Arrays in Cross Flow
,”
ASME J. Pressure Vessel Technol.
,
109
(
2
), pp.
219
223
.
21.
Chen
,
S. S.
, and
Jendrzejczyk
,
J. A.
,
1983
, “
Stability of Tube Arrays in Cross Flow
,”
Nucl. Eng. Des.
,
75
(
3
), pp.
351
373
.
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