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激光超声波形建模:脉冲持续时间和材料特性变化的影响。

Modelling laser ultrasound waveforms: The effect of varying pulse duration and material properties.

作者信息

Rajagopal Srinath, Cox Ben T

机构信息

Ultrasound and Underwater Acoustics, National Physical Laboratory, Hampton Road, Teddington, TW11 0LW, United Kingdom.

Department of Medical Physics and Biomedical Engineering, University College London, Malet Place Engineering Building, Gower Street, London, WC1E 6BT, United Kingdom.

出版信息

J Acoust Soc Am. 2021 Mar;149(3):2040. doi: 10.1121/10.0003558.

Abstract

Optical generation of ultrasound using nanosecond duration laser pulses has generated great interest both in industrial and biomedical applications. The availability of portable laser devices using semiconductor technology and optical fibres, as well as numerous source material types based on nanocomposites, has proliferated the applications of laser ultrasound. The nanocomposites can be deposited on the tip of optical fibres as well as planar hard and soft backing materials using various fabrication techniques, making devices suitable for a variety of applications. The ability to choose the acoustic material properties and the laser pulse duration gives considerable control over the ultrasound output. Here, an analytical time-domain solution is derived for the acoustic pressure waveform generated by a planar optical ultrasound source consisting of an optically absorbing layer on a backing. It is shown that by varying the optical attenuation coefficient, the thickness of the absorbing layer, the acoustic properties of the materials, and the laser pulse duration, a wide variety of pulse shapes and trains can be generated. It is shown that a source with a reflecting backing can generate pulses with higher amplitude than a source with an acoustically-matched backing in the same circumstances when stress-confinement has not been satisfied.

摘要

使用纳秒级激光脉冲进行超声的光学生成在工业和生物医学应用中引起了极大的兴趣。基于半导体技术和光纤的便携式激光设备的可用性,以及基于纳米复合材料的多种源材料类型,推动了激光超声的应用。纳米复合材料可以使用各种制造技术沉积在光纤尖端以及平面硬质和软质背衬材料上,从而使设备适用于各种应用。选择声学材料特性和激光脉冲持续时间的能力可对超声输出进行相当大的控制。在此,针对由背衬上的光吸收层组成的平面光学超声源产生的声压波形,推导了一个解析时域解。结果表明,通过改变光衰减系数、吸收层厚度、材料的声学特性和激光脉冲持续时间,可以产生各种各样的脉冲形状和序列。结果表明,在应力约束不满足的相同情况下,具有反射背衬的源可以比具有声学匹配背衬的源产生更高幅度的脉冲。

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