[1] 庄泽宇, 廉国选, 王小民. 水浸超声检测的平面波频域快速成像算法. 声学学报, 2021; 46(6): 1153−1163 doi: 10.15949/j.cnki.0371-0025.2021.06.034
[2] Olofsson T. Phase shift migration for imaging layered objects and objects immersed in water. IEEE Trans. Ultrason. Ferroelectr. Freq. Control, 2010; 57(11): 2522−2530 doi: 10.1109/TUFFC.2010.1718
[3] Khaled A, Maréchal P, Lenoir O, et al. Study of the resonances of periodic plane media immersed in water: Theory and experiment. Ultrasonics, 2013; 53(3): 642−647 doi: 10.1016/j.ultras.2012.11.011
[4] Arranz M C, Carlson J E, Rantatalo M, et al. 3D synthetic aperture imaging using a water-jet coupled large aperture single transducer. IEEE International Ultrasonics Symposium, Chicago, IL, USA, 2014: 1372−1375
[5] Lu Z X, Xu C G, Xiao D G, et al. Nondestructive testing method for curved surfaces based on the multi-Gaussian beam model. J. Nondestruct. Eval., 2015; 34: 1−9 doi: 10.1007/s10921-014-0275-3
[6] Petrescu R V, Aversa R, Akash B, et al. Testing by non-destructive control. Am. J. Eng. Appl. Sci, 2017; 10(2): 568−583 doi: 10.3844/ajeassp.2017.568.583
[7] Guo C Z, Xu C G, Xiao D G, et al. Trajectory planning method for improving alignment accuracy of probes for dual-robot air-coupled ultrasonic testing system. Int. J. Adv. Rob. Syst., 2019; 16(2): 1−11 doi: 10.1177/1729881419842713
[8] 杨友胜, 张建平, 聂松林. 水射流喷嘴能量损失研究. 机械工程学报, 2013; 49(2): 139−145 doi: 10.3901/JME.2013.02.139
[9] 周庆祥, 李经明, 李建奎, 等. 超声C扫描用喷水系统设计及其检测稳定性. 应用声学, 2021; 40(4): 579−587 doi: 10.11684/j.issn.1000-310X.2021.04.012
[10] 范伟诚, 沈功田, 王宝轩, 等. 钢板受控射流超声检测用线聚焦探头检测灵敏度的影响因素. 无损检测, 2021; 43(10): 19−24 doi: 10.11973/wsjc202110004
[11] Mohammed M S, Kim K S. Probability of detection simulations to study the influence of surface roughness on the reliability of ultrasonic testing system. Russ. J. Nondestr. Test., 2014; 50: 239−247 doi: 10.1134/S1061830914040056
[12] Yin X T, Morris S A, O'Brien W D, et al. Ultrasonic pulse-echo subwavelength defect detection mechanism: Experiment and simulation. J. Nondestruct. Eval., 2003; 22: 103−115 doi: 10.1023/B:JONE.0000010737.63227.f4
[13] Calmon P, Mahaut S, Chatillon S, et al. CIVA: An expertise platform for simulation and processing NDT data. Ultrasonics, 2006; 44: 975−979 doi: 10.1016/j.ultras.2006.05.218
[14] Belgroune D, Belleval J F, Djelouah H. A theoretical study of ultrasonic wave transmission through a fluid-solid interface. Ultrasonics, 2008; 48(3): 220−230 doi: 10.1016/j.ultras.2008.01.003
[15] Huang R, Schmerr L W, Sedov A. Multi-gaussian beam modeling for multilayered anisotropic media, I: Modeling foundations. Res. Nondestruct. Eval., 2007; 18(4): 193−220 doi: 10.1080/09349840701392532
[16] 贾惠芹, 王成云, 党瑞荣. 流体流速对超声波流量测量精度的影响及校准. 仪器仪表学报, 2020; 41(7): 1−8 doi: 10.19650/j.cnki.cjsi.J2006211
[17] Kierkegaard A, Boij S, Efraimsson G. A frequency domain linearized Navier-Stokes equations approach to acoustic propagation in flow ducts with sharp edges. J. Acoust. Soc. Am., 2010; 127(2): 710−719 doi: 10.1121/1.3273899
[18] Kierkegaard A, Allam S, Efraimsson G, et al. Simulations of whistling and the whistling potentiality of an induct orifice with linear aeroacoustics. J. Sound Vib., 2012; 331(5): 1084−1096 doi: 10.1016/j.jsv.2011.10.028
[19] Williamschen M, Gabard G. Interface source terms for high-order aeroacoustics. AIAA J., 2020; 58(3): 1079−1092 doi: 10.2514/1.J058317
[20] Sun Y, Zhang T, Zheng D. New analysis scheme of flow-acoustic coupling for gas ultrasonic flowmeter with vortex near the transducer. Sensors, 2018; 18(4): 1151 doi: 10.3390/s18041151
[21] 郭立新, 范威. 基于计算流体力学计算结果的穿孔管消声器声学性能研究. 机械工程学报, 2017; 53(1): 79−85 doi: 10.3901/JME.2017.01.079
[22] Baasch T, Doinikov A A, Dual J. Acoustic streaming outside and inside a fluid particle undergoing monopole and dipole oscillations. Phys. Rev. E, 2020; 101(1): 1−16 doi: 10.1103/PhysRevE.101.013108
[23] Baglietto E, Ninokata H. A turbulence model study for simulating flow inside tight lattice rod bundles. Nucl. Eng. Des., 2005; 235(7): 773−784 doi: 10.1016/j.nucengdes.2004.10.007
[24] Clair V, Gabard G. Spectral broadening of acoustic waves by convected vortices. J. Fluid Mech., 2018; 841: 50−80 doi: 10.1017/jfm.2018.94
[25] 荆晨轩, 时胜国, 杨德森, 等. 水下低频振荡涡流场声散射调制机理与特性研究. 物理学报, 2023; 72(1): 221−235 doi: 10.7498/aps.72.20221748
[26] 卢华兵, 王正祥, 刘威, 等. 燃气轮机1.5级轴流压气机气动噪声预测. 哈尔滨工程大学学报, 2023; 44(3): 379−385 doi: 10.11990/jheu.202206047
[27] 施智晓, 许聪, 赖焕新. 多孔空腔结构对亚音速喷流噪声影响的研究. 工程热物理学报, 2019; 40(3): 559−564