水下自激吸气式脉冲射流装置瞬时冲击力分解

于晓龙1,2,刘新阳2,徐洪增1,陈豪2,汪顺生2,高传昌2

振动与冲击 ›› 2019, Vol. 38 ›› Issue (24) : 227-234.

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振动与冲击 ›› 2019, Vol. 38 ›› Issue (24) : 227-234.
论文

水下自激吸气式脉冲射流装置瞬时冲击力分解

  • 于晓龙1,2,刘新阳2,徐洪增1,陈豪2,汪顺生2,高传昌2
作者信息 +

Instantaneous impact force decomposition of underwater self-excited inspiration pulse jet device

  • YU Xiaolong1,2, LIU Xinyang2, XU Hongzeng1, CHEN Hao2, WANG Shunsheng2, GAO Chuanchang2
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摘要

为了提取水下自激吸气式脉冲射流装置瞬时冲击力中的时变冲击力和脉动冲击力。运用离散正交小波变换和经验模态分解(EMD)对装置瞬时冲击力进行消噪和分解,确定离散正交小波变换提取时变冲击力的小波基函数和分解层数以及EMD提取时变冲击力的固有模态函数(IMF)个数,分析围压对时变冲击力脉冲幅值和脉冲周期以及脉动冲击力脉动强度的影响规律。结果表明:在不同围压下,离散正交小波变换对时变冲击力的提取效果要优于EMD,但小波基函数的选择需要考虑不同围压下瞬时冲击力的变化特点;围压对装置吸气后时变冲击力脉冲周期影响不大,但对脉冲幅值影响较大;围压和吸气对瞬时冲击力时均值和脉动冲击力脉动强度影响较大,但在不同围压下吸气对两者的影响规律有所不同。

Abstract

In order to study the time-varying impact and fluctuation impact force in the instantaneous impact force of the underwater self-excited inspiration pulsed jet device, discrete orthogonal wavelet transform and EMD were used to denoise and decompose for the instantaneous impact force of the device.The wavelet basis function and the number of decomposition layers for the wavelet transform and the number of intrinsic mode functions (IMF) for EMD were determined for time-varying impact force extraction.The influence of confining pressure on the pulsed amplitude and pulsed period of the time-varying impact and the fluctuation strength of fluctuation impact were analyzed.The results show that under different confining pressure, the discrete orthogonal wavelet transform is better than EMD in extracting the time-varying impact force, but the choice of wavelet basis function needs to consider the variation characteristics of instantaneous impact force under different confining pressure.Confining pressure has little effect on the pulsed period of the time-varying impact force after the device inspiration, but it has a great influence on the pulsed amplitude.Confining pressure and inspiration have a great influence on the time-varying value of the instantaneous impact force and the fluctuation strength of the fluctuation impact force, but the influence of the inspiration on the two is different under different confining pressure.

关键词

水下 / 自激吸气 / 脉冲射流 / 瞬时冲击力 / 离散正交小波变换 / 经验模态分解(EMD)

Key words

underwater / self-excited inspiration / pulsed jet / instantaneous impact force / discrete orthogonal wavelet transform / empirical mode decomposition(EMD)

引用本文

导出引用
于晓龙1,2,刘新阳2,徐洪增1,陈豪2,汪顺生2,高传昌2. 水下自激吸气式脉冲射流装置瞬时冲击力分解[J]. 振动与冲击, 2019, 38(24): 227-234
YU Xiaolong1,2, LIU Xinyang2, XU Hongzeng1, CHEN Hao2, WANG Shunsheng2, GAO Chuanchang2. Instantaneous impact force decomposition of underwater self-excited inspiration pulse jet device[J]. Journal of Vibration and Shock, 2019, 38(24): 227-234

参考文献

[1]马飞,蔡腾飞,柳靖,.自振射流频率特性的试验研究[J].机械工程学报,2016, 52 (14) :182-187.

MA Fei ,CAI Teng-fei, LIU Jing, et al. Experimental study of self-resonating water jet frequency characteristics[J]. Journal of Mechanical Engineering, 2016, 52 (14) :182-187.

[2]Zhu Zhou, Zhaolong Ge, Yiyu Lu, et al. Experimental study on characteristics of self-excited oscillation pulsed water jet [J].Journal of vibroengineering, 2017, 19(2):1345-1357.

[3]唐川林,胡东,裴江红. 自激振荡脉冲射流喷嘴频率特性实验研究[J].石油学报, 2007,28(4):122-125.

TANG Chuan-lin, HU Dong, PEI Jiang-hong. Experimental study on the frequency characteristic of the self-excited oscillation pulsed nozzle [J]. Acta Petrolei Sinica, 2007,28(4):122-125.

[4]王健李江云.自激式喷嘴的三维非定常空化模型仿真研究[J].武汉大学学报(工学版),2014 , 47 (4) :542-547.

WANG Jian, LI Jiang-yun. Simulation study of three-dimensional unsteady cavitation model of self-excited pulse jet [J].Engineering Journal of Wuhan University, 2014, 47 (4):542-547.

[5]王乐勤, 王循明徐如良, .自激振荡脉冲喷嘴结构参数配比试验研究[J]. 工程热物理学报 , 2004 , 25 (6) :956-958.

WANG Le-qin, WANG Xun-ming, XU Ru-liang, et alExperimental study on structural parameters optimized design of the self-excited oscillation pulsed jet nozzle[J].Journal of Engineering Thermophysics,2004,25(6): 956-958

[6]Tomaz Kolsek, Nikola Jelic. Numerical study of flow asymmetry and self-sustained jet oscillations in geometrically symmetric cavities [J].Applied Mathematical Modelling, 2007, 31:2355-2373.

[7]李江云,徐如良,王乐勤.自激脉冲喷嘴发生机理数值模拟[J].工程热物理学报,2004,25(2):241-243.

LI Jiang-yun, XU Ru-liang, WANG Le-qin. Numerical simulation of mechanism of the self-excited pulse nozzle [J]. Journal of Engineering Thermophysics, 2004, 25(2):241-243.

[8]廖振方,唐川林.自激振荡脉冲射流喷嘴的理论分析[J].重庆大学学报(自然科学版),2002,25(2):24-27.

LIAO Zhen-fang, TANG Chuan-lin, ZHANG Feng-hua. Theory of the self-excited oscillation pulsed jet nozzle[J].Journal of Chongqing University (Natural Science Edition),2002,25(2):24-27

[9]王乐勤焦磊,徐如良,脉冲射流作用下驻点压力特性的试验研究[J].工程热物理学报 , 2005 , 26 (1) :71-73.

   WANG Le-qin, JIAO Lei, Xu Ru-liang, et al. Experimental study on stagnation pressure of pulse jet [J].Journal of Engineering Thermophysics, 2005, 26 (1):71-73.

[10]Baisheng Nie, Fei xue. A novel cutting technology for chemical environments using pulsed abrasive water jet [J].2017, 62:289-294.

[11]刘新阳,高传昌,刘玉龙,.水下自激吸气式脉冲射流装置冲击性能试验[J].振动与冲击,2015, 34(24) :188-191+208.

LIU Xin-yang, GAO Chuan-chang, LIU Yu-long, et alImpact performance tests of underwater self-excitation inspiration pulsed jet equipment [J]. Journal of Vibration and Shock,2015,34(24):188 -191

[12]杜玉昆,王瑞和,倪红坚.环空流体吸入式自激振荡脉冲射流大涡模拟研究[J].水动力学研究与进展 , 2009, 24 (4) :455-462.

DU Yu-kun, WANG Rui-he, NI Hong-jian. Large eddy simulation of self-oscillation pulsed water jet drawing in annulus fluid [J]. Journal of Hydrodynamics, 2009, 24 (4):455-462.

[13]王乐勤,王循明徐如良,低压大流量自激振荡脉冲射流喷嘴结构参数优化研究[J].流体机械, 2004 , 32 (3) :7-10.

WANG Le-qin, WANG Xun-ming, XU Ru-liang, et alStructure-parameter optimized study of self-excited oscillation pulsation-jet nozzle in low-press and amount-flux [J]. Fluid Machinery, 2004, 32 (3):7-10.

[14] Yanpeng Qu, Songying Chen. Orthogonal experimental research on the structural parameters of a self-excited pulsed cavitation nozzle [J]. European Journal of Mechanics B/Fluids, 2017, 65:179-183.

[15]Deng Li, Yong Kang, Xiaolong Ding, et al. Effects of area discontinuity at nozzle inlet on the characteristics of high speed self-excited oscillation pulsed waterjets [J]. Experimental Thermal and Fluid Science, 2016, 79:254–265.

[16]刘新阳,高传昌,张川,.自激吸气式脉冲射流装置压力及流动特性研究[J].四川大学学报(工程科学版),2016,48(3):41-47.

LIU Xin-yang, GAO Chuan-chang, ZHANG Chuan, et alStudy on pressure and flow characteristics for self-excited inspiration pulse jet device [J]. Journal of Sichuan University(engineering science edition),2016,48( 3):41-47

[17]刘新阳,高传昌,胡亚州,.吸气对水下自激脉冲射流装置压力特性的影响[J].应用基础与工程科学学报,2016,24(2):282-294.

LIU Xin-yang, GAO Chuan-chang, HU Ya-zhou, et alInfluence of inspiration on pressure characteristics for underwater self-excited pulsed jet device [J].Journal of Basic Science and Engineering, 2016, 24(2):282-294.

[18]刘沛清,冬俊瑞,李永祥.水垫塘内冲击射流特征及其对岩石河床的冲刷[J].水利学报,1995(1):19-26.

LIU Pie-qing, DONG Jun-rui, LI Yong-xiang. Characteristics for impinging jets in a plunge pool and scouring of rocky river beds [J]. Journal of Hydraulic Engineering, 1995(1):19-26.

[19]刘沛清,李福田.水垫塘内淹没冲击射流中的大尺度涡结构及其特征[J].水利学报,2000(2):60-65.

LIU Pei-qing, LI Fu-tian. Large vortex structures and their characteristics of submerged impinging jet in plunge pool [J]. Journal of Hydraulic Engineering, 2000(2):60-65.

[20]朱学锋,韩宁.基于经验模态分解的非平稳信号趋势项消除[J].飞行器测控学报,2012,31(1):65-70.

   ZHU Xue-feng, HAN Ning. Removal of non-stationary signal trend items by empirical mode decomposition [J].Journal of Spacecraft TT&C Technology, 2012, 31(1):65-70.

[21]张军,潘泽鑫,郑玉新,.振动信号趋势项提取方法研究[J].电子学报,2017,45(1):22-28.

ZHANG Jun, PAN Ze-xin, ZHENG Yu-xin, et al. Research on vibration signal trend extraction [J]. Acta Electronica Sinica, 2017, 45(1):22-28.

[22]申建红,李春祥,李锦华.基于小波变换和EMD提取非平稳风速中的时变均值[J].振动与冲击,2008:27(12), 126-130.

SHEN Jian-hong, LI Chun-xiang, LI Jin-hua. Extracting time-varying mean of then on-stationary wind speeds based on wavelet transform (wt) and EMD [J]. Journal of Vibration and Shock, 2008:27(12), 126-130.

[23]刘新阳,高传昌,赵礼等.自激脉冲淹没水射流装置性能试验研究[J].水力发电学报,2012,31(5):297-301.

   Liu Xin-yang, GAO Chuan-chang, ZHAO Li, et al. Experimental study on performance of self-excitation pulse submerged water jet equipment [J]. Journal of Hydroelectric Engineering, 2012, 31(5):297-301.

[24]胡广书.现代信号处理教程[M].北京:清华大学出版社,2014.

HU Guang-shun. Modern Signal Processing Tutorial [M]. Beijing:Tsinghua University Press,2014.

[25]李舜酩,李香莲.振动信号的现代分析技术与应用[M].北京:国防工业出版社,2008.

LI Shun-ming, LI Xiang-lian. Modern Analysis Technology and Application of Vibration Signal [M]. Beijing: National Defense Industry Press, 2008.

[26]史洁玉.MATLAB信号处理超级学习手册[M].北京:人民邮电出版社,2014.

SHI Jin-yu. MATLAB Signal Processing Super Learning Manual [M]. Beijing: People Post Press, 2014.

[27]吴志成,王重阳,任爱君.消除信号趋势项时小波基优选方法研究[J].北京理工大学学报, 2013,33(8),811-814.

WU Zhi-cheng, WANG Chong-yang, Ren An-jun. Optimal selection of wavelet base functions for eliminating signal trend based on wavelet analysis [J]. Journal of Beijing Institute of Technology, 2013, 33(8), 811-814.

[28]丁玉美.数字信号处理-时域离散随机信号处理[M].西安:西安电子科技大学出版社,2002.

DING Yu-mei. Digital Signal Processing - Time Domain Discrete Random Signal Processing [M]. Xi'an: Xi'an University of Electronic Science and Technology Press, 2002.

 


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