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用于无损检测应用的自聚焦高频超声换能器。

Self-focusing high-frequency ultrasonic transducers for non-destructive testing applications.

作者信息

Zhao Jianxin, Hao Jialin, Chen Dongdong, Fei Chunlong, Li Zhaoxi, Chang Kezheng, Zhang Zhipeng, Qi Wanlong, Li Changhong, Yang Yintang

机构信息

Northwest Institute of Mechanical and Electrical Engineering, Xianyang, 712099, Shaanxi, China.

Faculty of Integrated Circuit, Xidian University, Xi'an, 710071, Shaanxi, China.

出版信息

Sci Rep. 2025 Mar 14;15(1):8845. doi: 10.1038/s41598-025-93195-y.

Abstract

Focused high-frequency acoustic waves are utilized in industrial non-destructive testing (NDT) on account of their exceptional spatial resolution and high sensitivity. However, the majority of the focusing methods currently adopted for high-frequency transducers are mechanical pressure focusing and lens focusing, which may inflict mechanical damage on piezoelectric elements and give rise to low transmission efficiency. In this paper, an efficient approach to achieving self-focusing at high frequency is proposed. This is accomplished by utilizing half-concave piezoelectric elements. Through the employment of a precise micro-nano processing technology, a self-focusing half-concave ultrasonic transducer operating at a high frequency (62.7 MHz) was designed, fabricated, and characterized. This device exhibits excellent lateral resolution (39 μm) and a - 6 dB bandwidth (76.6%). The outstanding imaging performance was manifested using a multilayer circuit board and a chip. The results imply that the self-focusing half-concave high-frequency ultrasonic transducer has a prospective potential in industrial NDT, especially for defect detection in chip packaging.

摘要

聚焦高频声波因其卓越的空间分辨率和高灵敏度而被用于工业无损检测(NDT)。然而,目前高频换能器所采用的大多数聚焦方法是机械压力聚焦和透镜聚焦,这可能会对压电元件造成机械损伤并导致传输效率低下。本文提出了一种在高频下实现自聚焦的有效方法。这是通过使用半凹形压电元件来实现的。通过采用精确的微纳加工技术,设计、制造并表征了一种工作在高频(62.7 MHz)的自聚焦半凹形超声换能器。该器件具有出色的横向分辨率(39μm)和 -6 dB带宽(76.6%)。使用多层电路板和芯片展现出了出色的成像性能。结果表明,自聚焦半凹形高频超声换能器在工业无损检测中具有潜在的应用前景,特别是在芯片封装中的缺陷检测方面。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/abba/11909263/0e4b314f940e/41598_2025_93195_Fig1_HTML.jpg

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