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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Ultrasound Super-Resolution Flow Measurement of Suspensions in Narrow Channels
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Ultrasound Super-Resolution Flow Measurement of Suspensions in Narrow Channels

机译:超声超分辨率流量测量窄通道中的悬架

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Zinc-air flow batteries provide a scalable and cost-efficient energy storage solution. However, the achieved power density depends on the local flow conditions of the zinc particle suspension in the electrochemical cell. Numerical modeling is challenging due to the complex multiphase fluid and the interaction of flow and electrochemistry. Hence, performing experiments is crucial to investigate the influence of the flow conditions on the electrical performance, which requires flow instrumentation for the opaque suspension. To resolve the flow field across the 2.6-mm-wide flow channel of the investigated zinc-air flow battery (ZAB), a spatial resolution below 100 mu m has to be typically achieved. Using ultrasound techniques, the achieved spatial resolution is limited by the trade-off between ultrasound frequency and imaging depth. This trade-off is even more critical for suspensions due to the scattering of the ultrasound, which increases strongly with frequency. We propose super-resolution particle tracking velocimetry (SRPTV) to overcome this limitation by achieving the required spatial resolution at a low ultrasound frequency. SRPTV is based on the super-resolution technique ultrasound localization microscopy, which is adapted to strongly scattering suspensions by using a dual-frequency-phased array and applying a coherence weighting beamformer to suppress speckles, which result from the scattering at the zinc particles of the suspension. The spatial resolution and the velocity uncertainty are characterized through calibration measurement and numerical simulation. A spatial resolution of 66 mu m at an excitation wavelength of 330 mu m was achieved, which is sufficient for performing flow investigation in an operational ZAB. The measured flow profile reveals shear-thinning properties and wall slip and therefore differs significantly from a parabolic flow profile of a Newtonian fluid. The presented technique offers potential for performing flow investigations of suspensions in small geometries with a spatial resolution beyond the diffraction limit.
机译:锌 - 气流电池提供可扩展且经济高效的能量存储解决方案。然而,实现的功率密度取决于电化学电池中锌颗粒悬浮液的局部流动条件。数值建模是由于复杂的多相流体和流动和电化学的相互作用而挑战。因此,进行实验至关重要,以研究流动条件对电能的影响,这需要对不透明悬浮液的流量仪器。为了在研究的锌 - 空气流电池(ZAB)的2.6mm宽的流动通道上解析流场,通常可以实现低于100μm的空间分辨率。使用超声技术,实现的空间分辨率受超声波频率和成像深度之间的折衷所限制。由于超声波散射,这种权衡对于悬架来说更为关键,这与频率强烈增加。我们提出超分辨率粒子跟踪速度(SRPTV)来克服这种限制,通过实现低超声频率所需的空间分辨率。 SRPTV基于超声波定位显微镜,其适于通过使用双频率相控阵的强烈散射悬浮液并将相干加权波束形成器抑制散斑,这由散射颗粒处的散射产生暂停。空间分辨率和速度不确定性通过校准测量和数值模拟来表征。实现了330μm的激发波长的66μm的空间分辨率,这足以在操作Zab中进行流动研究。测量的流动轮廓揭示了剪切稀释性能和壁滑,因此来自牛顿流体的抛物线流动轮廓显着不同。所提出的技术提供了在具有超出衍射极限的空间分辨率的小几何中进行流动调查的可能性。

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