Wang Yongqing, Lian Meng, Liu Haibo, Ying Yangwei, Zhou Lianjie
IEEE Trans Ultrason Ferroelectr Freq Control. 2018 Nov;65(11):2141-2149. doi: 10.1109/TUFFC.2018.2867429. Epub 2018 Aug 28.
Ultrasonic pulse technology has been widely employed for thickness measurement in the industrial field. Generally, the ultrasonic transducer is required to be perpendicular to the test sample surface when using the longitudinal wave. However, the transducer posture deviation (i.e., incident angle) of ultrasonic beam relative to the local surface normal is always inevitable. In addition, the received ultrasonic pressure will be weakened significantly because of the variation of echo propagation path and the attenuation of echo amplitude. As a result, the incident angle induced thickness error is generated. Therefore, it is necessary to investigate and quantify the negative effect of incident angle on ultrasonic thickness measurement. This paper focuses on the incident angle identification based on the first-echo energy attenuation. First, the influence mechanism of incident angle on pulse-echo pressure is analyzed theoretically by adopting an equivalent transducer model. Furthermore, a novel approach for the incident identification based on the first-echo energy attenuation is developed. A compensation model is established to correct the incident angle induced thickness error. To verify the feasibility of the proposed method, a series of incident angle calibrations and experiments were designed using the developed ultrasonic pulse measurement system. It was indicated that the proposed angle identification and error compensation approach had the capacity to improve the measurement accuracy of ultrasonic thickness.
超声脉冲技术已在工业领域广泛应用于厚度测量。通常,使用纵波时要求超声换能器垂直于测试样品表面。然而,超声束相对于局部表面法线的换能器姿态偏差(即入射角)总是不可避免的。此外,由于回波传播路径的变化和回波幅度的衰减,接收到的超声压力会显著减弱。结果,产生了入射角引起的厚度误差。因此,有必要研究和量化入射角对超声厚度测量的负面影响。本文重点研究基于首次回波能量衰减的入射角识别。首先,采用等效换能器模型从理论上分析了入射角对脉冲回波压力的影响机制。此外,还开发了一种基于首次回波能量衰减的入射角识别新方法。建立了补偿模型以校正入射角引起的厚度误差。为验证所提方法的可行性,使用所开发的超声脉冲测量系统设计了一系列入射角校准和实验。结果表明,所提的角度识别和误差补偿方法有能力提高超声厚度测量的精度。