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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Detection of deeply implanted impedance- switching devices using ultrasound doppler
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Detection of deeply implanted impedance- switching devices using ultrasound doppler

机译:使用超声多普勒检测深度植入的阻抗切换设备

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摘要

Communication with and transmission of energy to remote devices, such as deeply-implanted physiological recorders, using ultrasound presents several technical problems. In particular, device detection and piezoelectric sensor targeting remains difficult. Both tasks require differentiating the device from the surrounding fully passive tissues. Like radiofrequency identification devices, ultrasonic transponders have the capacity to rapidly change the impedance of their piezoelectric elements, which modulates their backscattering coefficient and allows the device to ??flash?? periodically at a very low energy cost, and, in particular situations, to communicate with an external device. A method for localizing the device by interpreting this flashing as movement is presented here. An ultrasound Doppler scan sequence is implemented using a programmable scanner, and radio-frequency data are collected and processed. The data are then analyzed for different excitation lengths and flashing frequencies to determine the optimum detection parameters. Measurements show that 1) detection can be achieved and is maximal when the excitation length reaches that of the Doppler processing window, and 2) when the flashing frequency is in a specific range. A study of the incidence angle also showed that 3) the sensor of the device can be detected over a given angular window. The conclusion is that by using ultrasound color Doppler sequences, impedanceswitching piezoelectric devices can be detected under the conditions provided in the present study, and can be distinguished from fully passive structures.
机译:使用超声与远程设备(例如深度植入的生理记录器)进行通信和将能量传输到远程设备存在一些技术问题。特别地,设备检测和压电传感器瞄准仍然困难。两项任务都需要将设备与周围的完全被动组织区分开。像射频识别设备一样,超声应答器也具有迅速改变其压电元件阻抗的能力,从而调制了它们的反向散射系数,并使该设备“闪光”。定期以非常低的能源成本,并且在特定情况下与外部设备进行通信。这里介绍了一种通过将闪烁解释为运动来定位设备的方法。使用可编程扫描仪执行超声多普勒扫描序列,并收集和处理射频数据。然后分析数据的不同激发长度和闪烁频率,以确定最佳检测参数。测量显示:1)可以实现检测,并且当激发长度达到多普勒处理窗口的激发长度时是最大的; 2)当闪烁频率在特定范围内时。对入射角的研究还表明3)可以在给定的角度窗口上检测设备的传感器。结论是,通过使用超声彩色多普勒序列,可以在本研究提供的条件下检测到阻抗切换压电器件,并且可以将其与完全无源结构区分开。

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