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Measurement uncertainty analysis of field-programmable gate-array-based, real-time signal processing for ultrasound flow imaging

机译:用于超声波映像的现场可编程栅极阵列的测量不确定性分析,用于超声波映像的实时信号处理

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Research?in magnetohydrodynamics (MHD) aims to understand the complex interactions of electrically conductive fluids and magnetic fields. A promising approach for investigating complex instationary flow phenomena are lab-scale experiments with low-melting alloys. They require a noninvasive flow instrumentation for opaque liquids with a high spatiotemporal resolution, a low velocity uncertainty and a long measurement duration. Ultrasound Doppler velocimetry can achieve multiplane, multicomponential flow imaging with multiple linear ultrasound arrays. However the average raw data output amounts to 1.2?GBs?1 at a frame rate of 33?Hz in a typical configuration for 200 transducers. This usually prevents long-duration measurements when offline signal processing is used. In this paper, we propose an online signal-processing chain for pulsed-wave Doppler velocimetry that is tailored to the specific requirements of flow imaging for lab-scale experiments. The trade-off between measurement uncertainty and computational complexity is evaluated for different algorithmic variants in relation to the Cramér–Rao bound. By utilizing selected approximations and parameter choices, a prepossessing could be efficiently implemented on a field-programmable gate array (FPGA), enabling a typical reduction of the data bandwidth of 6.5:1 and online flow visualization. We validated the performance of the signal processing on a test rig, yielding a velocity standard deviation that is a factor of 3 above the theoretical limit despite a low computational complexity. Potential applications for this signal processing include multihour flow measurements during a crystal-growth process and closed-loop velocity feedback for model experiments.
机译:研究?在磁力流体动力学(MHD)中,旨在了解导电流体和磁场的复杂相互作用。有希望的用于研究复杂的航展现象的方法是具有低熔点合金的实验室规模实验。它们需要具有高空间分辨率的不透明液体的非侵入性流动仪表,低速不确定度和长测量持续时间。超声波多普勒测速器可以实现乘法,多个线性流量成像,具有多个线性超声阵列。然而,平均原始数据输出量为1.2?GBSα1,帧速率为33ΩHz的典型配置,适用于200个换能器。这通常会在使用离线信号处理时防止长时间测量。在本文中,我们提出了一种用于脉冲波多普勒测定的在线信号处理链,其针对实验室规模实验的流量成像的特定要求。测量不确定性与计算复杂性之间的权衡是针对与Cramér-Rao绑定的不同算法变体评估的。通过利用所选择的近似和参数选择,可以在现场可编程门阵列(FPGA)上有效地实现预先实现,从而实现6.5:1和在线流度可视化的数据带宽的典型降低。我们验证了测试钻机上的信号处理的性能,产生速度标准偏差,尽管计算复杂性低,但仍然是高于理论极限的因子。该信号处理的潜在应用包括在晶体生长过程和用于模型实验的闭环速度反馈期间的多重流量测量。

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