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Software Defined Radio (SDR) and Direct Digital Synthesizer (DDS) for NMR/MRI Instruments at Low-Field

机译:用于低场NMR / MRI仪器的软件定义无线电(SDR)和直接数字合成器(DDS)

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摘要

A proof-of-concept of the use of a fully digital radiofrequency (RF) electronics for the design of dedicated Nuclear Magnetic Resonance (NMR) systems at low-field (0.1 T) is presented. This digital electronics is based on the use of three key elements: a Direct Digital Synthesizer (DDS) for pulse generation, a Software Defined Radio (SDR) for a digital receiving of NMR signals and a Digital Signal Processor (DSP) for system control and for the generation of the gradient signals (pulse programmer). The SDR includes a direct analog-to-digital conversion and a Digital Down Conversion (digital quadrature demodulation, decimation filtering, processing gain…). The various aspects of the concept and of the realization are addressed with some details. These include both hardware design and software considerations. One of the underlying ideas is to enable such NMR systems to “enjoy” from existing advanced technology that have been realized in other research areas, especially in telecommunication domain. Another goal is to make these systems easy to build and replicate so as to help research groups in realizing dedicated NMR desktops for a large palette of new applications. We also would like to give readers an idea of the current trends in this field. The performances of the developed electronics are discussed throughout the paper. First FID (Free Induction Decay) signals are also presented. Some development perspectives of our work in the area of low-field NMR/MRI will be finally addressed.
机译:提出了使用全数字射频(RF)电子技术在低场(0.1 T)下设计专用核磁共振(NMR)系统的概念验证。该数字电子设备基于三个关键元素的使用:用于产生脉冲的直接数字合成器(DDS),用于数字接收NMR信号的软件无线电(SDR)和用于系统控制和控制的数字信号处理器(DSP)。用于生成梯度信号(脉冲编程器)。 SDR包括直接的模数转换和数字下变频(数字正交解调,抽取滤波,处理增益等)。有关概念和实现的各个方面都有详细介绍。这些包括硬件设计和软件注意事项。基本思想之一是使此类NMR系统能够“享受”其他研究领域(尤其是电信领域)已经实现的现有先进技术。另一个目标是使这些系统易于构建和复制,以帮助研究小组实现用于大量新应用的专用NMR桌面。我们还想向读者介绍该领域的当前趋势。整篇文章都讨论了开发的电子设备的性能。还显示了第一个FID(自由感应衰减)信号。我们将最终探讨我们在低场NMR / MRI领域的一些发展前景。

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