Research on time-frequency multi-scale characteristics of high-power giant magnetostrictive underwater transducers considering hysteresis nonlinearity.

IF 2.3 2区 物理与天体物理 Q2 ACOUSTICS
Husheng Li, Bing Gao, Zhixing He, Mingzhi Yang, Wenhu Yang, Chaoyi Peng
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Abstract

High-power giant magnetostrictive underwater transducers are integral to underwater active sonar detection systems due to their high energy density, rapid dynamic response, and significant output force. However, these transducers exhibit complex nonlinear dynamic hysteresis behavior, which is influenced by the coupling of electric, magnetic, mechanical, and acoustic fields. This complexity presents considerable challenges in accurately characterizing their output properties. To address this issue, a comprehensive equivalent circuit model considering the hysteresis nonlinearity has been developed to accurately represent the time-frequency characteristics of the transducer. Initially, the proposed model utilizes an analytical equation to calculate both the bias magnetic field and the AC-driven magnetic field, thereby facilitating the analysis of the magnetic field distribution within the high-power giant magnetostrictive underwater transducer (HGMUT). Subsequently, an enhanced Preisach hysteresis model is employed to characterize the dynamic magnetic-mechanical strain relationship of the giant magnetostrictive material rods. Following this, a dynamic equation is established to ascertain the output displacement and force of the transducer. Moreover, a comprehensive equivalent circuit that includes mechanical-acoustic coupling is constructed to analyze the frequency domain transmitting current response and the time-domain acoustic signal of the transducer. Finally, a prototype of the high-power transducer has been successfully fabricated and tested, achieving a resonant frequency of approximately 1 kHz and a maximum transmitting current response of 187 dB. The experimental results indicate that the proposed model aligns closely with the experimental data, effectively capturing and predicting the output time-frequency characteristics of the transducer.

考虑磁滞非线性的大功率超磁致伸缩水下换能器时频多尺度特性研究。
大功率超磁致伸缩水下换能器具有能量密度高、动态响应快、输出力大等特点,是水下主动声呐探测系统不可或缺的组成部分。然而,这些换能器表现出复杂的非线性动态迟滞行为,受电场、磁场、机械场和声场耦合的影响。这种复杂性在准确表征其输出特性方面提出了相当大的挑战。为了解决这一问题,建立了一个考虑迟滞非线性的综合等效电路模型,以准确地表示换能器的时频特性。该模型首先利用解析方程计算偏置磁场和交流驱动磁场,从而便于分析大功率超磁致伸缩水下换能器(HGMUT)内部的磁场分布。随后,采用改进的Preisach滞回模型对超磁致伸缩材料棒的动态磁-机械应变关系进行了表征。在此基础上,建立了动态方程,确定了换能器的输出位移和力。此外,构建了包含机声耦合的综合等效电路,分析了换能器的频域发射电流响应和时域声信号。最后,成功制作了大功率换能器的原型并进行了测试,实现了约1 kHz的谐振频率和187 dB的最大发射电流响应。实验结果表明,该模型与实验数据吻合较好,能有效地捕捉和预测换能器输出的时频特性。
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来源期刊
CiteScore
4.60
自引率
16.70%
发文量
1433
审稿时长
4.7 months
期刊介绍: Since 1929 The Journal of the Acoustical Society of America has been the leading source of theoretical and experimental research results in the broad interdisciplinary study of sound. Subject coverage includes: linear and nonlinear acoustics; aeroacoustics, underwater sound and acoustical oceanography; ultrasonics and quantum acoustics; architectural and structural acoustics and vibration; speech, music and noise; psychology and physiology of hearing; engineering acoustics, transduction; bioacoustics, animal bioacoustics.
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