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Electrical conductivity imaging via contactless measurements: an experimental study

机译:通过非接触式测量进行电导率成像:一项实验研究

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A data-acquisition system has been developed to image electrical conductivity of biological tissues via contactless measurements. This system uses magnetic excitation to induce currents inside the body and measures the resulting magnetic fields. The data-acquisition system is constructed using a PC-controlled lock-in amplifier instrument. A magnetically coupled differential coil is used to scan conducting phantoms by a computer controlled scanning system. A 10000-turn differential coil system with circular receiver coils of radii 15 mm is used as a magnetic sensor. The transmitter coil is a 100-turn circular coil of radius 15 mm and is driven by a sinusoidal current of 200 mA (peak). The linearity of the system is 7.2% full scale. The sensitivity of the system to conducting tubes when the sensor-body distance is 0.3 cm is 21.47 mV/(S/m). It is observed that it is possible to detect a conducting tube of average conductivity (0.2 S/m) when the body is 6 cm from the sensor. The system has a signal-to-noise ratio of 34 dB and thermal stability of 33.4 mV//spl deg/C. Conductivity images are reconstructed using the steepest-descent algorithm. Images obtained from isolated conducting tubes show that it is possible to distinguish two tubes separated 17 mm from each other. The images of different phantoms are found to be a good representation of the actual conductivity distribution. The field profiles obtained by scanning a biological tissue show the potential of this methodology for clinical applications.
机译:已经开发了一种数据采集系统,以通过非接触式测量对生物组织的电导率成像。该系统利用磁激励在人体内部感应电流并测量产生的磁场。数据采集​​系统是使用PC控制的锁定放大器仪表构建的。磁耦合差动线圈用于通过计算机控制的扫描系统来扫描导电体模。具有半径为15 mm的圆形接收器线圈的10000匝差分线圈系统用作磁传感器。发射线圈是半径为15 mm的100匝圆形线圈,由200 mA(峰值)的正弦电流驱动。系统的线性度为满量程的7.2%。当传感器主体距离为0.3 cm时,系统对导电管的灵敏度为21.47 mV /(S / m)。可以观察到,当人体距离传感器6厘米时,可以检测出平均电导率(0.2 S / m)的导电管。该系统的信噪比为34 dB,热稳定性为33.4 mV // spl deg / C。使用最速下降算法重建电导率图像。从隔离的导电管获得的图像显示,可以区分彼此分开17 mm的两个管。发现不同体模的图像很好地表示了实际电导率分布。通过扫描生物组织获得的野外资料显示了该方法在临床应用中的潜力。

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