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Application of partial inversion pulse to ultrasonic time-domain correlation method to measure the flow rate in a pipe

机译:部分反转脉冲在超声时域相关方法测量管道中的流速

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This paper proposes the application of a novel ultrasonic pulse, called a partial inversion pulse (PIP), to the measurement of the velocity profile and flow rate in a pipe using the ultrasound time-domain correlation (UTDC) method. In general, the measured flow rate depends on the velocity profile in the pipe; thus, on-site calibration is the only method of checking the accuracy of on-site flow rate measurements. Flow rate calculation using UTDC is based on the integration of the measured velocity profile. The advantages of this method compared with the ultrasonic pulse Doppler method include the possibility of the velocity range having no limitation and its applicability to flow fields without a sufficient amount of reflectors. However, it has been previously reported that the measurable velocity range for UTDC is limited by false detections. Considering the application of this method to on-site flow fields, the issue of velocity range is important. To reduce the effect of false detections, a PIP signal, which is an ultrasound signal that contains a partially inverted region, was developed in this study. The advantages of the PIP signal are that it requires little additional hardware cost and no additional software cost in comparison with conventional methods. The effects of inversion on the characteristics of the ultrasound transmission were estimated through numerical calculation. Then, experimental measurements were performed at a national standard calibration facility for water flow rate in Japan. The experimental results demonstrate that measurements made using a PIP signal are more accurate and yield a higher detection ratio than measurements using a normal pulse signal.
机译:本文提出了一种使用超声时域相关(UTDC)方法的新型超声波脉冲(称为部分反转脉冲),称为部分反转脉冲(PIP),从管道中的速度曲线和流速的测量。通常,测量的流速取决于管中的速度曲线;因此,现场校准是检查现场流量测量的准确性的唯一方法。使用UTDC的流量计算基于测量的速度分布的集成。该方法与超声波脉冲多普勒方法相比的优点包括速度范围的可能性,没有限制,其对流场的适用性而没有足够量的反射器。然而,先前已经报告说,UTDC的可测量速度范围受到错误检测的限制。考虑到这种方法在现场流场中的应用,速度范围的问题很重要。为了减少假检测的效果,在本研究中开发了一种具有含有部分反向区域的超声信号的PIP信号。 PIP信号的优点是,与传统方法相比,它需要几乎不需要额外的硬件成本,并且没有额外的软件成本。通过数值计算估计反转对超声传输特性的影响。然后,在日本的水流率的国家标准校准设施下进行实验测量。实验结果表明,使用PIP信号制造的测量更准确,并且使用正常脉冲信号的测量比测量更高。

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