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High Dynamics Adaptive Demodulator for Ultrasound Applications: FPGA implementation

机译:超声应用的高动态自适应解调器:FPGA实现

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The modern acquisition and processing systems digitalize the input signal directly at radio-frequency (RF) by using Analog-to-Digital (AD) converters, that works up to several hundreds of MHz, and then process the signal numerically in powerful flexible digital devices like the Field Programmable Gate Arrays (FPGAs). A digital coherent demodulation is the first processing step in several applications. Echo-Doppler ultrasound systems belong to this category. An industrial fluid flowing in a pipe can be investigated by transmitting ultrasound bursts at some MHz in the pipe. Fluid particles produce echoes with a frequency shift (typically some kHz) related to the particle velocity through the Doppler effect. The echoes are sampled at several tens of MHz, and coherent demodulated for detecting the Doppler shift. The demodulator processes the high intensity echoes from the steel pipe's wall together with the weak signal from the fluid, and thus it should feature very high dynamics. In this paper, it is presented an adaptive numerical demodulator integrated in the FPGA of an ultrasound system for flow profile detection. Its performance is tested with synthetic samples and a signal acquired from a pipe. Finally, the flow profile detected in a pipe, calculated by a processing chain that includes the proposed demodulator, is reported.
机译:现代采集和处理系统通过使用模数转换器(AD)转换器直接在射频(RF)上直接数字化输入信号,该转换器可达几百MHz,然后在强大的灵活数字设备中以数字方式处理信号像现场可编程门阵列(FPGA)。数字相干解调是若干应用中的第一个处理步骤。回声多普勒超声系统属于此类别。可以通过在管道中的一些MHz处传递超声波突发来研究流动在管道中的工业液。流体颗粒通过多普勒效应产生与颗粒速度有关的频移(通常一些kHz)的回波。回波以几十MHz采样,并相干解调用于检测多普勒偏移。解调器处理从钢管壁的高强度回波以及来自流体的弱信号,因此它应该具有非常高的动态。本文介绍了集成在用于流动轮廓检测的超声系统FPGA中的自适应数值解调器。其性能用合成样品和从管道获取的信号进行测试。最后,报道了由包括所提出的解调器的处理链计算的管道中检测到的流程轮廓。

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