1 钴铁氧体磁致特性
2 磁致伸缩超声换能器结构设计
2.1 磁致伸缩超声换能器结构
2.2 换能器动力学仿真
3 钴铁氧体磁致伸缩超声换能器磁场设计
表2 部件材料与相对磁导率Tab.2 Component materials and magnetic parameters |
| 部件 | 材料 | 相对磁导率 |
|---|---|---|
| 导磁块 | 锰锌铁氧体 | 2 400 |
| 永磁体 | 钕铁硼 | 1 |
| 磁致伸缩块 | 钴铁氧体 | 4 |
Journal of Shaanxi Normal University(Natural Science Edition) >
Design and output characteristics of cobalt ferrite magnetostrictive ultrasonic transducer
Received date: 2023-10-29
Online published: 2024-11-25
Compared with the traditional nickel-based materials and rare earth-based materials, the magnetostrictive coefficient is small, the eddy current loss is large, and the preparation cost is high. Utilizing cobalt ferrite as the driving core of magnetostrictive ultrasonic transducer can achieve stable service and high-power output at elevated frequencies. In this paper, a longitudinal magnetostrictive ultrasonic transducer with resonant frequency of 30 kHz is designed based on the magnetostrictive characteristics of cobalt ferrite and the finite element simulation is used to analyze the dynamics and magnetic field of the transducer. The output characteristics of the cobalt ferrite magnetostrictive ultrasonic transducer are tested by impedance matching. The resonant frequency, output amplitude and working temperature of the prototype are tested. The results show that the magnetic field intensity is 0.1~0.25 T (301~653 Oe), which can meet the driving requirement of cobalt ferrite in the best driving range(250~750 Oe).When the driving voltage is 12 V and the signal gain is 20 dB, the actual resonant frequency of the transducer is 29.8 kHz, the output amplitude is 3.75 μm, and the stable working temperature is 60 ℃. The experimental results verify the reliability and application potential of cobalt ferrite in the field of magnetostrictive transducers.
JIANG Tao , XUE Changsheng , PI Jun , SHEN Zhihuang , HOU Dapan , HE Jinchun . Design and output characteristics of cobalt ferrite magnetostrictive ultrasonic transducer[J]. Journal of Shaanxi Normal University(Natural Science Edition), 2024 , 52(6) : 67 -73 . DOI: 10.15983/j.cnki.jsnu.2024310
表2 部件材料与相对磁导率Tab.2 Component materials and magnetic parameters |
| 部件 | 材料 | 相对磁导率 |
|---|---|---|
| 导磁块 | 锰锌铁氧体 | 2 400 |
| 永磁体 | 钕铁硼 | 1 |
| 磁致伸缩块 | 钴铁氧体 | 4 |
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