Lewis George K, Lewis George K, Olbricht William
Department of Biomedical Engineering, Cornell University, Ithaca, NY 14853, USA.
Meas Sci Technol. 2008 Oct;19(10):105102. doi: 10.1088/0957-0233/19/10.
This paper explains the circuitry and signal processing to perform electrical impedance spectroscopy on piezoelectric materials and ultrasound transducers. Here, we measure and compare the impedance spectra of 2-5 MHz piezoelectrics, but the methodology applies for 700 kHz-20 MHz ultrasonic devices as well. Using a 12 ns wide 5 volt pulsing circuit as an impulse, we determine the electrical impedance curves experimentally using Ohm's law and fast Fourier transform (FFT), and compare results with mathematical models. The method allows for rapid impedance measurement for a range of frequencies using a narrow input pulse, digital oscilloscope and FFT techniques. The technique compares well to current methodologies such as network and impedance analyzers while providing additional versatility in the electrical impedance measurement. The technique is theoretically simple, easy to implement and completed with ordinary laboratory instrumentation for minimal cost.
本文阐述了对压电材料和超声换能器进行电阻抗谱测量的电路及信号处理方法。在此,我们测量并比较了2 - 5MHz压电材料的阻抗谱,但该方法同样适用于700kHz - 20MHz的超声设备。使用一个12ns宽的5伏脉冲电路作为脉冲源,我们依据欧姆定律和快速傅里叶变换(FFT)通过实验确定电阻抗曲线,并将结果与数学模型进行比较。该方法利用窄输入脉冲、数字示波器和FFT技术,能够对一系列频率进行快速阻抗测量。与诸如网络分析仪和阻抗分析仪等当前方法相比,该技术在电阻抗测量方面具有更高的通用性。该技术理论上简单,易于实施,并且使用普通实验室仪器即可完成,成本极低。