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基于压电换能器瞬态特性的新型高速谐振频率跟踪方法

A Novel High-Speed Resonant Frequency Tracking Method Using Transient Characteristics in a Piezoelectric Transducer.

机构信息

DH Innovation Co., Ltd., Gwangju 61209, Korea.

Department of Electrical Engineering, University of Chonnam National, Gwangju 61186, Korea.

出版信息

Sensors (Basel). 2022 Aug 24;22(17):6378. doi: 10.3390/s22176378.

Abstract

When driving the piezoelectric transducer (PT: piezo transducer), which is a key device, it is important for the ultrasonic system (using ultrasonic waves of 20 kHz or higher) to operate at a resonant frequency that can maximize the conversion of mechanical energy (vibration) from electrical energy. The resonant frequency of the PT changes during the actual operation according to the load fluctuations and environmental conditions. Therefore, to maintain a stable output in an ultrasonic system, it is essential to track the resonant frequency in a short time. In particular, fast resonant frequency tracking (RFT: resonant frequency tracking) is an important factor in the medical ultrasonic system, i.e., the system applied in this thesis. The reason is that in the case of a medical ultrasonic system, heat-induced skin necrosis, etc., may cause the procedure to be completed within a short period of time. Therefore, tracking the RFT time for maximum power transfer is an important factor; in this thesis, we propose a new high-speed RFT method. The proposed method finds the whole system resonance frequency by using the transient phenomenon (underdamped response characteristic) that appears in an impedance system, such as an ultrasonic generator, and uses this to derive the mechanical resonance frequency of the PT. To increase the accuracy of the proposed method, parameter fluctuations of the pressure of the PT, the equivalent circuit impedance analysis of the PT, and a MATLAB simulation were performed. Through this, the correlation between the resonance frequency of the ultrasonic system, including the LC filter with nonlinear characteristics and the mechanical resonance frequency of the PT, was analyzed. Based on the analyzed results, a method for tracking the mechanical resonance frequency that can transfer the maximum output to the PT is proposed in this thesis. Experiments show that using the proposed high-speed RFT method, the ultrasonic system can track the mechanical resonance frequency of the PT with high accuracy in a short time.

摘要

当驱动压电换能器(PT:压电器件)时,这是一个关键设备,重要的是使超声系统(使用 20 kHz 或更高的超声波)在能够将机械能(振动)最大程度地转换为电能的谐振频率下运行。PT 的谐振频率在实际操作中会根据负载波动和环境条件而变化。因此,为了在超声系统中保持稳定的输出,必须在短时间内跟踪谐振频率。特别是在医疗超声系统中,快速谐振频率跟踪(RFT:谐振频率跟踪)是一个重要因素,即本文所应用的系统。原因是在医疗超声系统中,热诱导的皮肤坏死等可能导致在短时间内完成该过程。因此,跟踪 RFT 以实现最大功率传输是一个重要因素;在本文中,我们提出了一种新的高速 RFT 方法。该方法通过使用超声发生器等阻抗系统中出现的瞬态现象(欠阻尼响应特性)找到整个系统的谐振频率,并利用该方法推导出 PT 的机械谐振频率。为了提高所提出方法的准确性,对 PT 的压力参数波动、PT 的等效电路阻抗分析以及 MATLAB 模拟进行了研究。通过这些研究,分析了包括具有非线性特性的 LC 滤波器在内的超声系统的谐振频率与 PT 的机械谐振频率之间的相关性。基于分析结果,本文提出了一种能够将最大功率传输到 PT 的机械谐振频率跟踪方法。实验表明,使用所提出的高速 RFT 方法,超声系统可以在短时间内高精度地跟踪 PT 的机械谐振频率。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cb04/9460266/954c23279484/sensors-22-06378-g001.jpg

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