相控阵
波束赋形
非线性系统
超声成像
超声波传感器
声学
相控阵超声
材料科学
相控阵光学
光学
物理
电子工程
计算机科学
工程类
电信
量子力学
天线(收音机)
作者
Wenfa Zhu,Wenjing He,Yanxun Xiang,Guopeng Fan,Jichao Xu,Xiaodong Chai,Yuxin Tao,Yi Zhang
标识
DOI:10.1080/10589759.2025.2541049
摘要
Traditional phased array ultrasonic (PAU) non-destructive testing technology is not prone to generating echo response when detecting closed microcracks, making it difficult to perform quantitative detection. In this paper, a nonlinear PAU modified delay-multiply-and-sum (PAU-MDMAS) imaging method is proposed to achieve the accurate detection of closed microcracks. In order to effectively collect nonlinear signals, full array elements, odd array elements, and even array elements are used to adjust the amplitude of incident waves at the focal point, and the fixed voltage fundamental amplitude difference (FAD) method is used to obtain nonlinear signals. On this basis, the signal processing removes clutter interference and effectively improves the signal-to-noise ratio of nonlinear signals. In addition, the MDMAS adaptive beamforming algorithm is proposed for post-processing imaging. By utilizing the spatial coherence between signals, the delay signals are adaptively paired and multiplied to highlight the nonlinear response from closed microcracks, and the coherence factor (CF) is calculated for adaptive beamforming to improve the nonlinear imaging accuracy of ultrasonic phased array. The experimental results show that the nonlinear PAU-MDMAS imaging method not only achieves high-precision localisation imaging of closed microcracks but also quantitatively characterises their length and better detects their expansion trends.
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