Non-paraxial multi-Gaussian beam model of Leaky Rayleigh waves generated by a focused immersion transducer

被引:6
作者
Li, Shan [1 ]
Turner, Joseph A. [2 ]
Schmerr, Lester W. [3 ]
Li, Xiongbing [1 ]
机构
[1] Cent S Univ, Sch Traff & Transportat Engn, Changsha 410075, Hunan, Peoples R China
[2] Univ Nebraska, Mech & Mat Engn, Lincoln, NE 68588 USA
[3] Iowa State Univ, Ctr NDE, Ames, IA 50011 USA
基金
中国国家自然科学基金;
关键词
Leaky Rayleigh wave; Non-paraxial Multi-Gaussian beam model; Focused immersion transducer; Attenuation coefficient; POINT-SOURCE METHOD; FIELDS;
D O I
10.1016/j.ultras.2019.04.006
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
A non-paraxial multi-Gaussian beam (NMGB) model is proposed for Leaky Rayleigh Waves (LRWs) generated by a focused immersion transducer at oblique incidence. Using the NMGB model, the velocity fields are calculated and compared with the corresponding results obtained by the paraxial multi-Gaussian beam (MGB) model and the more exact Rayleigh-Sommerfeld integral (RSI) model. Numerical results show that the LRW beam behavior obtained using the NMGB model agrees well with that using the RSI model, but the NMGB model is much more efficient. Moreover the NMGB model overcomes the accuracy limitation of the MGB model. Good agreement between the NMGB model and experimental measurements for both on-axis and off-axis fields is obtained when an attenuation coefficient is introduced. In addition, this model can be used to measure the attenuation coefficient with consideration of the diffraction attenuation. It is observed that the attenuation coefficient of the LRW will increase when the acoustic impendence differences between the solid and fluid decrease. The NMGB model described in this article provides an efficient tool for calculating the velocity fields of the LRW and is therefore significant for practical applications of ultrasonic measurements.
引用
收藏
页码:57 / 62
页数:6
相关论文
共 34 条
[1]   Semi-analytical modeling of ultrasonic fields in solids with internal anomalies immersed in a fluid [J].
Banerjee, Sourav ;
Kundu, Tribikram .
WAVE MOTION, 2008, 45 (05) :581-595
[2]   Ultrasonic field modeling in multilayered fluid structures using the distributed point source method technique [J].
Banerjee, Sourav ;
Kundu, Tribikram .
JOURNAL OF APPLIED MECHANICS-TRANSACTIONS OF THE ASME, 2006, 73 (04) :598-609
[3]  
Bertoni H. L., 1973, Applied Physics, V2, P157, DOI 10.1007/BF00884205
[4]   Some extensions of the Gaussian beam expansion: Radiation fields of the rectangular and the elliptical transducer [J].
Ding, DS ;
Zhang, Y ;
Liu, JQ .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 2003, 113 (06) :3043-3048
[5]  
Ghoshal G, 2008, JRC2008: PROCEEDINGS OF THE ASME/IEEE/ASCE JOINT RAIL CONFERENCE, P165
[6]  
Hu P., 2015, ASME JOINT RAIL C
[7]   Ultrasonic transducer fields modeled with a modular multi-Gaussian beam and application to a contact angle beam testing [J].
Jeong, Hyunjo ;
Schmerr, Lester W., Jr. .
RESEARCH IN NONDESTRUCTIVE EVALUATION, 2008, 19 (02) :87-103
[8]   Generation of the basis sets for multi-Gaussian ultrasonic beam models - An overview [J].
Kim, HJ ;
Schmerr, LW ;
Sedov, A .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 2006, 119 (04) :1971-1978
[9]  
Koester L., 2012, ASME 2012 RAIL TRANS, P107
[10]   Ultrasonic attenuation in polycrystals using a self-consistent approach [J].
Kube, Christopher M. ;
Turner, Joseph A. .
WAVE MOTION, 2015, 57 :182-193