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Nonlinearity in a Medical Ultrasound Probe Under High Excitation Voltage

机译:高励磁电压下医用超声探头中的非线性

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Tissue harmonic imaging is often the preferred ultrasound imaging modality due to its ability to suppress reverberations. The method requires good control of the transmit stage of the ultrasound scanner, as harmonics in the transmitted ultrasound pulses will interfere with the harmonics generated in the tissue during nonlinear propagation, degrading image quality. In this study, a medical ultrasound probe used in tissue harmonic imaging was experimentally characterized for transmitted second-harmonic distortion to identify and compare the sources of nonlinear distortion in the probe and transmit electronics. The system was tested up to amplitudes above what is found during conventional operation, pushing the system to the limits in order to investigate the phenomenon. Under these conditions, second-harmonic levels up to -20 dB relative to the fundamental frequency were found in the ultrasound pulses transmitted from the probe. The transmit stage consists of high-voltage transmit electronics, cable, tuning inductors, and the acoustic stack. The contribution from the different stages in the ultrasound transmit chain was quantified by separating and measuring at different positions. Nonlinearities in the acoustic transducer stack were identified as the dominating source for second harmonics in the transmitted ultrasound pulses. Contribution from other components, e.g., transmit electronics and cable and tuning circuitry, were found to be negligible compared with that from the acoustic stack. Investigation of the stack's electrical impedance at different driving voltages revealed that the impedance changes significantly as a function of excitation voltage. The second-harmonic peak in the transmitted pulses can be explained by this nonlinear electrical impedance distorting the driving voltage and current.
机译:由于其抑制混响的能力,组织谐波成像通常是优选的超声成像模型。该方法需要良好的控制超声扫描仪的发射级,因为透射超声脉冲中的谐波会干扰在非线性传播期间组织中产生的谐波,降低图像质量。在本研究中,在组织谐波成像中使用的医学超声探针进行了实验,用于透射的二次谐波失真,以识别和比较探头中的非线性变形源和传输电子。该系统被测试到高于传统操作期间发现的幅度,将系统推向限制以调查该现象。在这些条件下,在从探针传输的超声波脉冲中发现了相对于基本频率的第二次谐波水平。发射级由高压传输电子设备,电缆,调谐电感器和声学堆叠组成。通过在不同位置分离和测量来量化超声透射链中不同阶段的贡献。声学换能器叠层中的非线性被识别为透射的超声脉冲中的第二次谐波的主导源。与声学堆叠相比,发现来自其他组件的贡献,例如,传输电子设备和电缆和调谐电路。在不同的驱动电压下对堆叠的电阻抗的研究显示阻抗随着激励电压的函数而变化显着变化。可以通过扭曲驱动电压和电流的这种非线性电阻抗来解释透射脉冲中的第二谐波峰值。

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