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Hardware for quasi-single-shot multifrequency magnetic induction tomography (MIT): the Graz Mk2 system

机译:准单次多频磁感应断层扫描(MIT)的硬件:Graz Mk2系统

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Magnetic induction tomography (MIT) has been suggested by several groups for the contact-lessmapping of the passive electrical properties of tissues via AC magnetic fields in the frequency range between several tens of kHz and several tens of MHz. Multifrequency MIT as an analog to multifrequency EIT has been tried and first image reconstructions have been demonstrated with phantoms. MIT appears to yield comparable images to EIT but offers the advantage of being non-contacting. In the beta-dispersion range of most tissues the method is challenging because the signals are very small and buried in noise. In order to minimize drifts and systematic errors fast data acquisition is therefore pivotal. This paper presents a method for single-shot MIT which allows us to acquire the data for a multifrequency image with an analog bandwidth of 50 kHz-1.5 MHz which covers a good part of the beta-dispersion of many tissues. The transmit (TX) coils are simultaneously driven by individual power amplifiers with a multisinus pattern with up to 3 A(pp). The amplifiers are configured as current sources so as not to perturb the excitation fields by inappropriately terminated coils. The separation of the different TX channels after reception is achieved by splitting up the carrier frequencies into individual subcarriers with a narrow spacing of at most 300 Hz. In this way every TX coil is identifiable by its own subcarrier but the whole excitation band is contained within a few kHz. The real and imaginary parts of the received signals are extracted efficiently with FFT. The system noise and the sources for low-frequency perturbations are analyzed and characterized.
机译:几组人已经提出了磁感应断层摄影术(MIT),用于通过在几十kHz和几十MHz之间的频率范围内的AC磁场进行组织的无源电特性的无接触映射。已尝试使用多频MIT作为多频EIT的模拟,并已通过幻像演示了首批图像重建。 MIT似乎可以产生与EIT相当的图像,但具有非接触的优点。在大多数组织的β分散范围内,该方法具有挑战性,因为信号非常小且被噪声掩盖。为了最小化漂移和系统误差,快速数据采集因此至关重要。本文提出了一种用于单次MIT的方法,该方法使我们能够获取模拟带宽为50 kHz-1.5 MHz的多频图像的数据,该带宽涵盖了许多组织的β色散的很大一部分。发射(TX)线圈由单个功率放大器同时驱动,功率放大器具有高达3 A(pp)的多正弦波形。放大器配置为电流源,以免因端接不当的线圈而干扰励磁场。通过将载波频率分成最多300 Hz的窄间隔的各个子载波,可以实现接收后不同TX通道的分离。这样,每个TX线圈都可以通过其自己的子载波进行识别,但是整个激励频带都包含在几kHz内。接收信号的实部和虚部可以通过FFT有效地提取。分析和表征了系统噪声和低频扰动源。

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