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算法校正超声流量计中换能器阵列的无源元件引起的测量偏移。

Algorithm to Correct Measurement Offsets Introduced by Inactive Elements of Transducer Arrays in Ultrasonic Flow Metering.

机构信息

Laboratory of Medical Imaging, Department of Imaging Physics, Delft University of Technology, Lorentzweg 1, 2628 CJ Delft, The Netherlands.

KROHNE New Technologies B.V., Kerkeplaat 12, 3313 LC Dordrecht, The Netherlands.

出版信息

Sensors (Basel). 2022 Nov 30;22(23):9317. doi: 10.3390/s22239317.

Abstract

Ultrasonic flow meters (UFMs) based on transducer arrays offer several advantages. With electronic beam steering, it is possible to tune the steering angle of the beam for optimal signal-tonoise ratio (SNR) upon reception. Moreover, multiple beams can be generated to propagate through different travel paths, covering a wider section of the flow profile. Furthermore, in a clamp-on configuration, UFMs based on transducer arrays can perform self-calibration. In this manner, userinput is minimized and measurement repeatability is increased. In practice, transducer array elements may break down. This could happen due to aging, exposure to rough environments, and/or rough mechanical contact. As a consequence of inactive array elements, the measured transit time difference contains two offsets. One offset originates from non-uniform spatial sampling of the generated wavefield. Another offset originates from the ill-defined beam propagating through a travel path different from the intended one. In this paper, an algorithm is proposed that corrects for both of these offsets. The algorithm also performs a filtering operation in the frequency-wavenumber domain of all spurious (i.e., flow-insensitive) wave modes. The advantage of implementing the proposed algorithm is demonstrated on simulations and measurements, showing improved accuracy and precision of the transit time differences compared to the values obtained when the algorithm is not applied. The proposed algorithm can be implemented in both in-line and clamp-on configuration of UFMs based on transducer arrays.

摘要

基于换能器阵列的超声流量计 (UFM) 具有多项优势。采用电子束转向技术,在接收时可以调整波束的转向角,以获得最佳的信噪比 (SNR)。此外,还可以生成多个波束,通过不同的传播路径传播,覆盖更宽的流量剖面。此外,在夹式配置中,基于换能器阵列的 UFM 可以进行自校准。这样可以最大程度地减少用户输入,并提高测量的重复性。在实际应用中,换能器阵列元件可能会出现故障。这可能是由于老化、暴露在恶劣环境中以及/或者受到粗暴的机械接触所致。由于阵列元件失效,测量的传输时间差包含两个偏移量。一个偏移量源于生成的波场空间采样不均匀。另一个偏移量源于通过不同于预期的传播路径传播的未定义波束。本文提出了一种算法,可以纠正这两个偏移量。该算法还在所有伪(即与流量无关的)波模式的频波域中执行滤波操作。在仿真和测量中证明了该算法的优势,与未应用算法时相比,传输时间差的准确性和精度得到了提高。该算法可以在基于换能器阵列的在线和夹式 UFM 中实现。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/97c8/9738948/acb1e72ef897/sensors-22-09317-g001.jpg

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