1. College of Metrology and Measurement Engineering, China Jiliang University, Hangzhou, Zhejiang 310018, China
2.Zhejiang Institute of Metrology, Hangzhou, Zhejiang 310018, China
3.Key Laboratory of Acoustics and Vibration Precision Meas Tech for State Market Regulation, Hangzhou, Zhejiang 310018, China
4. Key Laboratory of Acoustics and Vibration Precision Meas Tech of Zhejiang Province, Hangzhou, Zhejiang 310018, China
Abstract:The radiated sound field of the high intensity focused ultrasonic transducer is measured based on the laser vibration measurement method. Compared with the results measured by the standard hydrophone, the measured values of the fundamental wave signal, the second harmonic and the third harmonic at the focus are basically consistent. The error of the fundamental wave sound pressure is within 10%, and the sound pressure distribution at the focal plane is basically consistent. At the same time, the influence of the thin film on the sound field measurement in the laser vibration measurement method is solved based on the multilayer dielectric impedance transfer method, and the sound pressure transmission coefficient of the thin film at different frequencies is calculated. Experiments are designed to verify the results obtained by the laser vibrometry method and the standard hydrophone measurement method at different frequencies(1MHz、5MHz、10MHz). The results show that the correction of the measurement results of the laser vibrometer method by the sound pressure transmission coefficient can effectively reduce the measurement error.
Kim D, Kim M, Kang K, et al. Development of an algorithm for HIFU focus visualization[C]//2014 IEEE International Ultrasonics Symposium (IUS). IEEE, 2014.
[8]
常帅帅. 基于水听器的高强度声场参数测量研究[D]. 北京:北京化工大学, 2017.
Xu A X, Cao Y G, Zheng H F, et al. Design and Methodology Research of a Sensor Based on Reflection Probe for Focused Ultrasonic Measurement[J]. Acta Metrologica Sinica, 2021, 42 (2): 204-212.
Xiong L L. Principle and clinical application of HIFU therapy for tumor [J]. Chinese medical instrument information, 2009, 15 (3): 17-21.
[10]
Wear K A, Howard S M. Correction for Spatial Averaging Artifacts in Hydrophone Measurements of High-Intensity Therapeutic Ultrasound: An Inverse Filter Approach[J]. IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control, 2019, 66(9): 1453-1464.
[11]
Xing G, Ping Y, He L, et al. Spatial averaging effects of hydrophone on field characterization of planar transducer using Fresnel approximation[J]. Ultrasonics, 2016, 71(1): 51-58.
[13]
Weber M, Wilkens V. Using a heterodyne vibrometer in combination with pulse excitation for primary calibration of ultrasonic hydrophones in amplitude and phase[J]. Metrologia, 2017, 54(4): 432-444.
[16]
Srinath R, Toby S, Treeby B E, et al. Laser generated ultrasound sources using carbon-polymer nanocomposites for high frequency metrology[J]. The Journal of the Acoustical Society of America, 2018, 144(2): 584-597.
[19]
张海澜. 理论声学[M]. 北京: 高等教育出版社, 2007: 207-212.
Jia L C, Cheng S L, Zeng Z M. Research progress in optical detection of ultrasound fields: A review [J]. Chinese Journal of Scientific Instrument, 2019, 40(9): 1-15.
Chen N, Zhao P, Wang Y B, et al. The Temperature Rise of Tissue-Mimicking Phantom under the Action of High Intensity Focused Ultrasound[J]. Acta Metrologica Sinica, 2021, 42 (12): 1636-1643.
Guo C C, Yao L, Zheng H F, et al. Multi -parameter detection of medical focused ultrasonic field based on near-field cross-spectrum method[J]. Chinese Journal of Scientific Instrument, 2019, 40(3): 39-46.
[12]
Esward T J, Robinson S P. Extending the frequency range of the National Physical Laboratory primary standard laser interferometer for hydrophone calibrations to 80MHz[J]. IEEE Transactions on Ultrasonics Ferroelectrics & Frequency Control, 1999, 46(3): 737-744.
[14]
Guggenheim J A, Zhang E Z, Beard P C. A method for measuring the directional response of ultrasound receivers in the range 03MHz to 80MHz using a laser generated ultrasound source[J]. IEEE Transactions on Ultrasonics Ferroelectrics & Frequency Control, 2017, 64(12): 1857-1863.
[15]
Jacob X, Barriere C, Takatsu R, et al. Optical measurement of transient ultrasonic shock waves[C]//Ultrasonics Symposium. IEEE, 2004: 52-55.
Wang H Y, Feng X J, Zhu H J, et al. Two-dimensional Sound-field Scanning Based on Optical Method [J]. Acta Metrologica Sinica, 2018, 39(3): 381-385.
Wang Y B, Ping Z H. Test of sound-field for high frequency focused transducers using laser interferometry [J]. Journal of Applied Acoustics, 2003, 22(1): 12-15.