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Performance evaluation of piezoelectric and differential pressure sensor for vortex flowmeters

机译:涡街流量计压电和压差传感器的性能评估

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摘要

Piezoelectric and transient differential pressure sensors are two among the most widely employed sensors for vortex flowmeter application. The present study evaluates the performance of these two techniques under fully developed and disturbed flow conditions. Firstly, the location of the transient differential pressure sensor is optimized to obtain high amplitude signals and good linearity in Strouhal number. Empirical mode decomposition method in combination with autocorrelation decay is successfully employed at high Reynolds numbers to identify the vortex shedding frequency in presence of hydrodynamic noise. The performance of the differential pressure sensor deteriorates significantly under disturbed flow conditions at low Reynolds number due to the presence of low frequency components. This deterioration in the signal quality limits the lower operating range of the flowmeter with differential pressure sensor. The output signals of the piezoelectric sensor and differential pressure sensor under no flow condition are compared to obtain the background noise due to piping vibrations and electrical interferences. These results will help a designer to suggest robust signal processing algorithms for vortex frequency detection.
机译:压电和瞬态压差传感器是涡街流量计应用中使用最广泛的两种传感器。本研究评估了这两种技术在充分发展和扰动的流动条件下的性能。首先,对瞬态压差传感器的位置进行优化,以获得高振幅信号和Strouhal数的良好线性。在高雷诺数下成功地采用经验模态分解方法与自相关衰减相结合来识别存在水动力噪声的涡旋脱落频率。由于存在低频分量,在低雷诺数下的扰动流量条件下,压差传感器的性能会大大降低。信号质量的这种下降限制了带压差传感器的流量计的较低工作范围。比较无流量条件下的压电传感器和压差传感器的输出信号,以获得由于管道振动和电气干扰而产生的背景噪声。这些结果将有助于设计人员提出用于涡流频率检测的可靠信号处理算法。

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