Jeong Hyunjo, Shin Hyojeong, Zhang Shuzeng, Li Xiongbing
Department of Mechanical Engineering, Wonkwang University, Iksan 54538, Republic of Korea.
Graduate School of Flexible and Printable Electronics, Jeonbuk National University, Jeonju 54896, Republic of Korea.
Materials (Basel). 2023 Jun 30;16(13):4739. doi: 10.3390/ma16134739.
In nonlinear ultrasound testing, the relative nonlinear parameter is conveniently measured as a sensitive means of detecting and imaging overall variation of microstructures and damages. Compared to the quadratic nonlinear parameter (β'), the cubic nonlinear parameter (γ'), calculated as the third harmonic amplitude divided by the cube of the fundamental amplitude, has generally a higher value, providing better sensitivity in nonlinear parameter mapping. Since the third harmonic amplitude is about two orders of magnitude lower than the fundamental amplitude, efficient excitation and highly sensitive reception of third harmonic is very important. In this paper, we explore an odd harmonic thickness resonant transducer that meets the requirements for pulse-echo third harmonic generation (THG) measurements. We also address the problem of source nonlinearity that may be present in the measured amplitude of the third harmonic and propose a method to properly correct it. First, we measure γ' for a series of aluminum specimens using the through-transmission method to observe the behavior of γ' as a function of specimen thickness and input voltage, and examine the effects of various corrections such as attenuation, diffraction and source nonlinearity. Next, we apply the odd harmonic resonant transducer to pulse-echo THG measurements of precipitation heat-treated specimens. It is shown that such transducer is very effective in generation and detection of fundamental and third harmonics under finite amplitude toneburst excitation. The highly sensitive detectability of γ' are presented as a function of aging time, and the sensitivity of γ' is compared with that of β' and β'2.
在非线性超声检测中,相对非线性参数作为检测和成像微观结构及损伤整体变化的灵敏手段,便于测量。与二次非线性参数(β')相比,三次非线性参数(γ')通过三次谐波振幅除以基波振幅的立方来计算,其值通常更高,在非线性参数映射中提供了更好的灵敏度。由于三次谐波振幅比基波振幅低约两个数量级,因此高效激发和高灵敏度接收三次谐波非常重要。在本文中,我们探索了一种满足脉冲回波三次谐波产生(THG)测量要求的奇次谐波厚度共振换能器。我们还解决了三次谐波测量幅度中可能存在的源非线性问题,并提出了一种对其进行适当校正的方法。首先,我们使用穿透传输法测量一系列铝试样的γ',以观察γ'随试样厚度和输入电压的变化行为,并研究诸如衰减、衍射和源非线性等各种校正的影响。接下来,我们将奇次谐波共振换能器应用于沉淀热处理试样的脉冲回波THG测量。结果表明,这种换能器在有限振幅短脉冲串激励下,对基波和三次谐波的产生和检测非常有效。给出了γ'作为时效时间函数的高灵敏度可检测性,并将γ'的灵敏度与β'和β'2的灵敏度进行了比较。