Second Harmonic Generation Through a Plate Immersed in Water: Theory and Experiment

被引:0
|
作者
Haumesser, L. [1 ]
Meulen, F. Vander [1 ]
Marechal, P. [1 ]
Matar, O. Bou [1 ]
机构
[1] Univ Tours, GIP ULTRASONS ENIVL, LUSSI FRE CNRS 2448, F-41034 Blois, France
来源
2006 IEEE ULTRASONICS SYMPOSIUM, VOLS 1-5, PROCEEDINGS | 2006年
关键词
Nonlinear acoustics; second harmonic generation; transmitted field; NDT;
D O I
暂无
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
In linear acoustics, the pressure field transmitted through a plate immersed in water is commonly used to determine the characteristics of the object. The aim of this work is to extend the approach to the quasi-linear case. The so-called insertion/substitution method consists in comparing the amplitude of the transmitted field with and without the sample whose parameters are to evaluate. An initially sinusoidal plane wave normally incident upon the plate is considered. The second order pressure field is described analytically, based on the solution to the Westervelt equation, from series of reflected and transmitted waves at the interfaces. Attenuation, dispersion and diffraction effects for the fundamental component are included in the model. Firstly, it is shown that the derived expression can be separated into three components according that harmonic generation occurs before, in or beyond the plate. Secondly, the source terms for harmonic generation are identified. Furthermore, experimental data obtained from aluminum plates are compared to results from the analytical expressions. The ability to deduce the nonlinear coefficient of a solid plate from such an experimental configuration is discussed.
引用
收藏
页码:1782 / 1785
页数:4
相关论文
共 50 条
  • [31] Precise Urea/Water Eutectic Composition by Temperature-Resolved Second Harmonic Generation
    Yuan, Lina
    Clevers, Simon
    Couvrat, Nicolas
    Cartigny, Yohann
    Dupray, Valerie
    Coquerel, Gerard
    CHEMICAL ENGINEERING & TECHNOLOGY, 2016, 39 (07) : 1326 - 1332
  • [32] Orientation analysis of a nonionic amphiphile at the water-surface by second-harmonic generation
    Elstner, U
    Marowsky, G
    Busse, G
    Kahlweit, M
    ANALYTICAL SCIENCES, 1998, 14 (01) : 31 - 34
  • [33] Towards characterization and identification of solid state pharmaceutical mixtures through second harmonic generation
    Rawle, CB
    Lee, CJ
    Strachan, CJ
    Payne, K
    Manson, PJ
    Rades, T
    JOURNAL OF PHARMACEUTICAL SCIENCES, 2006, 95 (04) : 761 - 768
  • [34] Second harmonic generation from the 'centrosymmetric' crystals
    Nalla, Venkatram
    Medishetty, Raghavender
    Wang, Yue
    Bai, Zhaozhi
    Sun, Handong
    Wei, Ji.
    Vittal, Jagadese J.
    IUCRJ, 2015, 2 : 317 - 321
  • [35] Nonlinear Enhancement of the Efficiency of the Second Harmonic Generation
    Bidin, Noriah
    Khamsan, Nur Ezaan
    Sabhan, Enass Maulud
    Noor, Faizani Mohd
    ENABLING SCIENCE AND NANOTECHNOLOGY, 2011, 1341 : 254 - 258
  • [36] Second harmonic generation imaging in muscle fibers
    Both, M
    Vogel, M
    Fink, RHA
    Uttenweiler, D
    CONFOCAL, MULTIPHOTON, AND NONLINEAR MICROSCOPIC IMAGING, 2003, 5139 : 112 - 120
  • [37] Second harmonic generation from a ferroelectric film
    Murgan, R
    Razak, F
    Tilley, DR
    Tan, TY
    Osman, J
    Halif, MNA
    COMPUTATIONAL MATERIALS SCIENCE, 2004, 30 (3-4) : 468 - 473
  • [38] Application of Second Harmonic Generation in Biomedical Imaging
    Zhang Ziyi
    Wang Mingxue
    Liu Zhihe
    Fang Xiaofeng
    Wu Changfeng
    CHINESE JOURNAL OF LASERS-ZHONGGUO JIGUANG, 2020, 47 (02):
  • [39] Second Harmonic Generation in CdSiP2
    Gonzalez, Leonel P.
    Upchurch, Derek
    Barnes, Jacob O.
    Schunemann, Peter G.
    Zawilski, Kevin
    Guha, Shekhar
    NONLINEAR FREQUENCY GENERATION AND CONVERSION: MATERIALS, DEVICES, AND APPLICATIONS VIII, 2009, 7197
  • [40] On theory of second harmonic generation in 2D nonlinear photonic crystals with arbitrary structures
    Eshniyazov, V. E.
    Eshchanov, B. Kh.
    Yusupov, D. B.
    Ergashev, Q. Ya.
    Sapaev, U. K.
    NANOSYSTEMS-PHYSICS CHEMISTRY MATHEMATICS, 2015, 6 (06): : 779 - 785