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首页> 外文期刊>Ultrasonics, Ferroelectrics and Frequency Control, IEEE Transactions on >Difference frequency magneto-acousto-electrical tomography (DF-MAET): application of ultrasound-induced radiation force to imaging electrical current density
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Difference frequency magneto-acousto-electrical tomography (DF-MAET): application of ultrasound-induced radiation force to imaging electrical current density

机译:差频磁声电层析成像(DF-MAET):超声感应辐射力在成像电流密度中的应用

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Magneto-acousto-electrical tomography (MAET) is a potential imaging modality which can provide high-spatialresolution images of the impedance of conductive media. In MAET, the impedance is reconstructed from the mapped current density distribution Jab(r) that would exist in a sample if a current/voltage source were to be applied through measurement electrodes a and b. To map Jab(r) without applying a current/voltage source, the sample is placed in a static magnetic field and a focused ultrasonic pulse is directed to a point r to generate a point-like dipole source via the Lorentz force mechanism. The MAET voltage Uab, which is directly proportional to Jab(r), is measured through electrodes a and b for each scanning point. To reconstruct the electrical impedance, we need to map the current density distribution at every point inside the sample. However, with the MAET experimental setup reported in our previous paper on MAET, the MAET signal from a homogenous interior of the sample is undetectable because of the spatially-oscillating nature of the ultrasound field inside the sample. In this paper, we propose to use dual-frequency ultrasound to generate the MAET signal at the difference frequency through the ultrasound radiation force mechanism. The dynamic radiation force causes vibrations inside the sample (and consequently, generates the electric field) with a wavelength much larger than the dimension of the sample along the transducer?s axis. Therefore, the MAET signal caused by the radiation force will not be canceled out. We create a dynamic radiation force by applying an amplitudemodulated signal with a modulation frequency fm of several kilohertz and a carrier frequency f0 of 2.25 MHz to drive the transducer. The dependence of the DF-MAET signal in experiments on the modulation frequency and on the density of the sample agrees with the prediction based on the radiation force mechanism. The spatial resolution-n-n of DF-MAET is also studied to verify the radiation force mechanism. Finally, we will prove that the parametric effect in the coupling oil is not a significant source of the DF-MAET signal by imaging a sample at different distances from the transducer. Potential improvements to the present DF-MAET experimental configuration are also discussed.
机译:磁声电层析成像(MAET)是一种潜在的成像方式,可以提供导电介质阻抗的高空间分辨率图像。在MAET中,如果要通过测量电极a和b施加电流/电压源,则将从样品中存在的映射电流密度分布Jab(r)重建阻抗。为了在不施加电流/电压源的情况下绘制Jab(r),请将样品置于静磁场中,并将聚焦的超声波脉冲引导至点r,以通过洛伦兹力机制产生点状偶极子源。与电极Jab(r)成正比的MAET电压Uab通过每个扫描点的电极a和b进行测量。为了重建电阻抗,我们需要绘制样品内部每个点的电流密度分布图。但是,在我们先前关于MAET的论文中报道的MAET实验设置中,由于样品内部超声场的空间振荡特性,无法检测到来自样品内部均匀的MAET信号。在本文中,我们建议使用双频超声通过超声辐射力机制在不同频率下生成MAET信号。动态辐射力会引起样品内部的振动(并因此产生电场),其波长远大于样品沿换能器轴的尺寸。因此,由辐射力引起的MAET信号将不会被抵消。我们通过施加调幅信号来产生动态辐射力,该调幅信号的调制频率fm为几千赫兹,载波频率f0为2.25 MHz,以驱动换能器。实验中DF-MAET信号对调制频率和样品密度的依赖性与基于辐射力机制的预测相符。还研究了DF-MAET的空间分辨率n-n以验证辐射力机理。最后,通过对距换能器不同距离的样本进行成像,我们将证明耦合油中的参数效应不是DF-MAET信号的重要来源。还讨论了对当前DF-MAET实验配置的潜在改进。

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