In this study, numerical analysis is carried out around the cyclic flat-plate cascade with symmetric and asymmetric slit, so as to examine the suppressing or controlling effect of the slit on cavitation instabilities such as cavitation oscillation (CO) which resembles cavitation surge, and rotating cavitation. These instabilities cause various problems for the turbomachinery, for example, rotating cavitation causes an asynchronous shaft vibration, and CO causes an oscillation of column of working fluid as a result of the resonance phenomenon of the system. In liquid propellant rocket engine, suppression device for these instabilities bring increase in cost of the launch. Therefore, it is thought that to develop effective suppression technique is important for turbopumps. Especially, in this paper, two types of the flat-plate three blades cascade which have symmetric slit on each blade and three types of the cascade which have asymmetric slit were analyzed, and the results are compared with those of cascade without slit. As a result, the CO is perfectly suppressed in both of two types cascade with asymmetric slit. Also, other examined cascades have suppression effect of CO These results indicate the possibility of suppressing cavitation instabilities in actual inducers or controlling the type of the cavitation instabilities by the arrangement of the slit. Moreover, the head performance is equal or slightly increased by arranging slit.

References

1.
Tsujimoto
,
Y.
,
Yoshida
,
Y.
,
Maekawa
,
Y.
,
Watanabe
,
S.
, and
Hashimoto
,
T.
,
1997
, “
Observations of Oscillating Cavitation of an Inducer
,”
ASME J. Fluids Eng.
,
199
(
4
), pp.
775
781
.
2.
Hashimoto
,
T.
,
Yoshida
,
M.
, and
Watanabe
,
M.
,
1997
, “
Experimental Study on Rotating Cavitation of Rocket Propellant Pump Inducer
,”
J. Propul. Power
,
13
(
4
), pp.
488
494
.
3.
Ujino
,
T.
,
Morino
,
Y.
,
Kohsetsu
,
Y.
,
Mori
,
T.
, and
Shirai
,
Y.
,
1989
, “
POGO Analysis on the H-II Launch Vehicle
,”
AIAA
Paper No. 89-1209-CP.
4.
Shimagaki
,
M.
,
Haga
,
H.
,
Hashimoto
,
T.
,
Wataname
,
M.
,
Hasegawa
,
S.
,
Shimura
,
T.
, and
Kamijo
,
K.
,
2005
, “
Effect of the Casing Configurations on the Internal Flow and Unsteady Pressure Fluctuation in Rocket Pump Inducer
,”
J. Jpn. Soc. Aeronaut. Space Sci.
,
53
(
2005
), pp.
266
273
.
5.
Choi
,
Y.
,
Kurokawa
,
J.
, and
Imamura
,
H.
,
2007
, “
Suppression of Cavitation in Inducers by J-Grooves
,”
ASME J. Fluids Eng.
,
129
(
1
), pp.
15
22
.
6.
Kang
,
D.
,
Arimoto
,
Y.
,
Yonezawa
,
K.
,
Horiguchi
,
H.
,
Kawata
,
Y.
,
Hah
,
C.
, and
Tsujimoto
,
Y.
,
2010
, “
Suppression of Cavitation Instabilities in an Inducer by Circumferential Groove and Explanation of Higher Frequency Components
,”
Int. J. Fluid Mach. Syst.
,
3
(
2
), pp.
137
149
.
7.
Enomoto
,
N.
,
Kim
,
J.
,
Ishizaka
,
K.
,
Watanabe
,
S.
, and
Furukawa
,
A.
,
2003
, “
Suppression of Cavitation Surge of a Helical Inducer occurring in Partial Flow Conditions
,”
Fifth International Symposium on Cavitation
(CAV), Osaka, Japan, Nov. 1–4, Paper No.
OS-4-003
.http://flow.me.es.osaka-u.ac.jp/cav2003/Papers/Cav03-OS-4-003.pdf
8.
Iga
,
Y.
,
Nohmi
,
M.
,
Goto
,
A.
,
Shin
,
B. R.
, and
Ikohagi
,
T.
,
2003
, “
Numerical Study of Sheet Cavitation Break-Off Phenomenon on a Cascade Hydrofoil
,”
ASME J. Fluids Eng.
,
125
(
4
), pp.
643
651
.
9.
Iga
,
Y.
,
Nohmi
,
M.
,
Goto
,
A.
, and
Ikohagi
,
T.
,
2004
, “
Numerical Analysis of Cavitation Instabilities Arising in the Three-Blade Cascade
,”
ASME J. Fluids Eng.
,
126
(
3
), pp.
419
429
.
10.
Iga
,
Y.
, and
Yoshida
,
Y.
,
2011
, “
Mechanism of Propagation Direction of Rotating Cavitations in a Cascade
,”
AIAA J. Propul. Power
,
27
(
3
), pp.
675
683
.
11.
Iga
,
Y.
, and
Yoshida
,
Y.
,
2014
, “
Influence of Pipe Length on Cavitation Surge Frequency in a Cascade
,”
AIAA J. Propul. Power
,
30
(
6
), pp.
1520
1527
.
12.
Iga
,
Y.
, and
Yoshida
,
Y.
,
2011
, “
Numerical Analysis of Controlling of Cavitation Instabilities in Tandem Cascade
,”
Trans. JSASS
,
54
(
184
), pp.
137
143
.
13.
Hagiwara
,
R.
, and
Iga
,
Y.
,
2015
, “
The Numerical Analysis of Control Effect on Cavitation Instabilities in a Cascade With a Random Slit
,”
ASME
Paper No. AJKFluids2015-33292.
14.
Beattie
,
D. R. H.
, and
Whally
,
P. B.
,
1982
, “
Simple Two-Phase Frictional Pressure Drop Calculation Method
,”
Int. J. Multiphase Flow
,
8
(
1
), pp.
83
87
.
15.
Yee
,
H. C.
,
1987
, “
Upwind and Symmetric Shock-Capturing Schemes
,” NASA Ames Research Center, Moffett Field, CA, Report No.
NASA-TM-89464
.https://ntrs.nasa.gov/search.jsp?R=19870014712
16.
Iga
,
Y.
,
Hashizume
,
K.
, and
Yoshida
,
Y.
,
2011
, “
Numerical Analysis of Three Types of Cavitation Surge in Cascade
,”
ASME J. Fluids Eng.
,
133
(
7
), p.
071102
.
17.
Hagiwara
,
R.
, and
Iga
,
Y.
,
2015
, “
Suppression of Cavitation Instabilities in a Cascade by Using a Random Slit
,”
13th Asian International Conference on Fluid Machinery
(AICFM), Tokyo, Japan, Sept. 7–10, Paper No. AICFM13-101.
18.
Yamamoto
,
K.
,
1991
, “
Instabilities in a Cavitating Centrifugal Pump
,”
JSME Int. J. Ser. II
,
34
(
1
), pp.
9
17
.
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