Mousavi Seyed Foad, Hashemabadi Seyed Hassan, Jamali Jalil
Computational Fluid Dynamics (CFD) Research Laboratory, School of Chemical, Petroleum and Gas Engineering, Iran University of Science and Technology, Tehran, Iran; Flow Measurement Research Center, Iran University of Science and Technology, Tehran, Iran.
Department of Mechanical Engineering, Shoushtar Branch, Islamic Azad University, Shoushtar, Iran.
Ultrasonics. 2020 Aug;106:106165. doi: 10.1016/j.ultras.2020.106165. Epub 2020 Apr 28.
Due to the operating conditions, the flow profile within the ultrasonic flowmeters is not usually uniform. In order to consider the effects of non-uniformity, the flow profile correction factor (FPCF) can be implemented in the flow rate calculation process. Considering this, the measured velocity in each acoustic path can be converted to the average velocity. Various techniques have been used so far to simulate ultrasonic flowmeters and to calculate FPCF, which have often employed only CFD simulation without considering the effect of the flow on the acoustic wave movement inside the flowmeter. However, 3D acoustic simulation requires a very high mesh, especially when the diameter of the meter is high or the distance between the ultrasonic transducers is relatively long. In this work, a semi-3D simulation technique is used, through employing which, the FPCF for a commercial DN200 ultrasonic meter is calculated with a reasonable accuracy for different inlet flow velocities. Using this technique can significantly reduce the computational space and time.
由于运行条件的原因,超声流量计内部的流型通常并不均匀。为了考虑不均匀性的影响,可以在流量计算过程中引入流型校正因子(FPCF)。考虑到这一点,每个声程中的测量速度可以转换为平均速度。到目前为止,已经使用了各种技术来模拟超声流量计并计算FPCF,这些技术通常仅采用计算流体动力学(CFD)模拟,而没有考虑流量对流量计内部声波传播的影响。然而,三维声学模拟需要非常高的网格密度,特别是当流量计直径较大或超声换能器之间的距离相对较长时。在这项工作中,使用了一种半三维模拟技术,通过该技术,以合理的精度计算了不同入口流速下商用DN200超声流量计的FPCF。使用该技术可以显著减少计算空间和时间。