Xu Ke-Jun, Luo Qing-Lin, Fang Ming, Wang Gang, Liu San-Shan, Kang Yi-Bo, Shi Lei
School of Electrical and Automation Engineering, Hefei University of Technology, Hefei 230009, People's Republic of China.
Rev Sci Instrum. 2011 Sep;82(9):096105. doi: 10.1063/1.3632119.
Some digital signal processing methods have been used to deal with the output signal of vortex flowmeter for extracting the flow rate frequency from the noisy output of vortex flow rate sensor and achieving the measurement of small flow rate. In applications, however, the power of noise is larger than that of flow rate sometimes. These strong disturbances are caused by pipe vibration mostly. Under this condition the previous digital signal processing methods will be unavailable. Therefore, an anti-strong-disturbance solution is studied for the vortex flowmeter with two sensors in this Note. In this solution, two piezoelectric sensors are installed in the vortex probe. One is called the flow rate sensor for measuring both the flow rate and vibration noise, and the other is called the vibration sensor for detecting the vibration noise and sensing the flow rate signal weakly at the same time. An anti-strong-disturbance signal processing method combining the frequency-domain substation algorithm with the frequency-variance calculation algorithm is proposed to identify the flow rate frequency. When the peak number of amplitude spectrum of the flow rate sensor is different from that of the vibration sensor, the frequency-domain subtraction algorithm will be adopted; when the peak number of amplitude spectrum of the flow rate sensor is the same as that of the vibration sensor, the frequency-variance calculation algorithm will be employed. The whole algorithm is implemented in real time by an ultralow power micro control unit (MCU) to meet requirements of process instrumentation. The experimental results show that this method can obtain the flow rate frequency correctly even if the power of the pipe vibration noise is larger than that of the vortex flow rate signal.
一些数字信号处理方法已被用于处理涡街流量计的输出信号,以便从涡街流量传感器的噪声输出中提取流量频率,从而实现小流量测量。然而,在实际应用中,噪声功率有时会大于流量功率。这些强干扰大多是由管道振动引起的。在这种情况下,先前的数字信号处理方法将无法使用。因此,本论文针对具有两个传感器的涡街流量计研究了一种抗强干扰解决方案。在该解决方案中,两个压电传感器安装在涡街探头中。一个称为流量传感器,用于测量流量和振动噪声;另一个称为振动传感器,用于检测振动噪声并同时微弱地感知流量信号。提出了一种将频域相减算法与频率方差计算算法相结合的抗强干扰信号处理方法来识别流量频率。当流量传感器的幅值谱峰值数量与振动传感器不同时,采用频域相减算法;当流量传感器的幅值谱峰值数量与振动传感器相同时,采用频率方差计算算法。整个算法由超低功耗微控制单元(MCU)实时实现,以满足过程仪表的要求。实验结果表明,即使管道振动噪声功率大于涡街流量信号功率,该方法也能正确获取流量频率。