Estimation of aggressive intensity of a cavitating jet with multiple experimental methods

被引:24
作者
Kang, Can [1 ]
Liu, Haixia [2 ]
Soyama, Hitoshi [3 ]
机构
[1] Jiangsu Univ, Sch Energy & Power Engn, Zhenjiang 212013, Peoples R China
[2] Jiangsu Univ, Sch Mat Sci & Engn, Zhenjiang 212013, Peoples R China
[3] Tohoku Univ, Dept Finemech, Sendai, Miyagi 9808579, Japan
关键词
Cavitation erosion; Jet; Experimental methods; Energy; Cumulative erosion rate; Correlation; FATIGUE-STRENGTH; EROSION; SURFACE; IMPACT; RESISTANCE;
D O I
10.1016/j.wear.2017.11.001
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
An experimental study on the cavitating jet was conducted with emphasis placed on the detection of the energy that is emitted by the collapse of cavitation bubble. Four experimental methods, each respectively utilizing a hydrophone, an acoustic emission (AE) sensor, a laser Doppler vibrometer, and a polyvinylidene fluoride (PVDF) sensor, were compared. Aluminum specimens served as the target that would endure the impact of the cavitating jet. The mass loss was measured and the cumulative erosion rate was calculated. Various upstream pressures were used, and the effect of the cavitation number was considered as well. The results indicated that the cumulative erosion rate becomes maximum with the increase in the erosion time, and it is insensitive to variations in upstream pressure. The time span that is required for the cumulative erosion rate to reach its maximum value becomes shorter for high upstream pressures. An overall increase in the normalized energy is evident as the upstream pressure increases. At any given upstream pressure, the normalized energy varies inversely with the threshold level. The optimum threshold levels were obtained separately for each of the four methods. The correlation between the maximum erosion rate and the normalized energy was established statistically. The PVDF sensor proved to be the most effective instrument in estimating the aggressive intensity of the cavitating jet.
引用
收藏
页码:176 / 186
页数:11
相关论文
共 28 条
[1]  
[Anonymous], 2010, ANN BOOK ASTM STAND, V03. 02, P558
[2]   Non-contact method for analysis of cavitating flows [J].
Bilus, Ignacijo ;
Bizjan, Benjamin ;
Lesnik, Luka ;
Sirok, Brane ;
Pecnik, Bostjan ;
Dular, Matevz .
ULTRASONICS, 2017, 81 :178-186
[3]   An artificial neural network approach to investigate cavitating flow regime at different temperatures [J].
De Giorgi, M. G. ;
Bello, D. ;
Ficarella, A. .
MEASUREMENT, 2014, 47 :971-981
[4]  
Dezhkunov N. V., 2017, ULTRASON SONOCHEM
[5]   Formation and progression of cavitation erosion surface for long exposure [J].
Hattori, Shuji ;
Ogiso, Takaaki ;
Minami, Yusuke ;
Yamada, Ikuo .
WEAR, 2008, 265 (11-12) :1619-1625
[6]   The relation between the high speed submerged cavitating jet behaviour and the cavitation erosion process [J].
Hutli, Ezddin ;
Nedeljkovic, Milos S. ;
Radovic, Nenad A. ;
Bonyar, Attila .
INTERNATIONAL JOURNAL OF MULTIPHASE FLOW, 2016, 83 :27-38
[7]   Cavitation inception upstream of liquid lithium target for intense fusion neutron source [J].
Kondo, Hiroo ;
Kanemura, Takuji ;
Furukawa, Tomohiro ;
Hirakawa, Yasushi ;
Wakai, Eiichi .
FUSION ENGINEERING AND DESIGN, 2017, 124 :990-994
[8]   Effects of nozzle inner surface roughness on the cavitation erosion characteristics of high speed submerged jets [J].
Li, Deng ;
Kang, Yong ;
Wang, Xiaochuan ;
Ding, Xiaolong ;
Fang, Zhenlong .
EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2016, 74 :444-452
[9]   A STUDY OF PRESSURES AND EROSION PRODUCED BY COLLAPSING CAVITATION [J].
MOMMA, T ;
LICHTAROWICZ, A .
WEAR, 1995, 186 (02) :425-436
[10]  
Nishimura A., 2012, J. Fluid Sci. Technol, V7, P405, DOI [10.1299/jfst.7.405, DOI 10.1299/JFST.7.405]