Li Weihua, Chen Qiang, Wu Jiangtao
Key Laboratory of Thermo-Fluid Science and Engineering, Ministry of Education, Xi'an Jiaotong University, Xi'an, Shaanxi 710049, China.
Rev Sci Instrum. 2014 Apr;85(4):044905. doi: 10.1063/1.4871993.
The double threshold method realized by hardware circuits and high performance timing chip TDC-GP21 was successfully adapted to solve the key problem of ultrasonic distance measurement, the accurate time-of-flight (TOF) measurement of ultrasonic wave. Compared with other techniques of TOF measurement, the double threshold method presented in this work can suppress noise in the received signal, and achieve a time resolution of around 22 ps and real-time. This method is easy to realize and pertains the advantage of low cost. To compensate temperature and pressure deviations, a temperature measurement module of 10 mK in precision as well as a pressure measurement module of 0.01% in accuracy was developed. The system designed in this work can be exactly used as a two paths ultrasonic gas flowmeter without any adjustment of the hardware circuit. The double threshold method was further corroborated using experiment results of both the ultrasonic distance measurement and ultrasonic gas flow measurement. In distance measurement, the maximum absolute deviation and the maximum relative error are 0.69 mm and 0.28%, respectively, for a target distance range of 100-600 mm. In flow measurement, the maximum absolute deviation and the worst repeatability are 1.16% and 0.65% for a flow in the range of 50-700 m(3)/h.
通过硬件电路和高性能定时芯片TDC-GP21实现的双阈值方法成功应用于解决超声波测距的关键问题,即超声波飞行时间(TOF)的精确测量。与其他TOF测量技术相比,本文提出的双阈值方法能够抑制接收信号中的噪声,实现约22 ps的时间分辨率并具备实时性。该方法易于实现且具有成本低的优点。为补偿温度和压力偏差,开发了精度为10 mK的温度测量模块以及精度为0.01%的压力测量模块。本文设计的系统无需对硬件电路进行任何调整即可精确用作双路径超声波气体流量计。通过超声波测距和超声波气体流量测量的实验结果进一步证实了双阈值方法。在距离测量中,对于100 - 600 mm的目标距离范围,最大绝对偏差和最大相对误差分别为0.69 mm和0.28%。在流量测量中,对于50 - 700 m³/h范围内的流量,最大绝对偏差和最差重复性分别为1.16%和0.65%。