The Higher Educational Key Laboratory for Measuring & Control Technology and Instrumentations of Heilongjiang Province, School of Measurement-Control Technology & Communications Engineering, Harbin University of Science and Technology, Harbin, Heilongjiang, China.
School of Atmospheric Sciences, Sun Yat-Sen University, Zhuhai, Guangdong, China.
PLoS One. 2021 Jul 8;16(7):e0254256. doi: 10.1371/journal.pone.0254256. eCollection 2021.
To improve the performance of wind sensors in the high velocity range, this paper proposes a wind measurement strategy for thermal wind velocity sensors that combines the constant power and constant temperature difference driving modes of the heating element. Based on the airflow distribution characteristics from fluid dynamics, sequential measurement and correction is proposed as a method of measuring wind direction. In addition, a wind velocity and direction measurement instrument was developed using the above-mentioned approaches. The test results showed that the proposed instrument can obtain large dynamic wind velocity measurements from 0 to 60 m/s. The wind velocity measurement accuracy was ±0.5 m/s in the common velocity range of 0-20 m/s and ±1 m/s in the high velocity range of 20-60 m/s. The wind direction accuracy was ±3° throughout the 360° range. The proposed approaches and instrument are not only practical but also capable of meeting the requirements of wide-range and large dynamic wind vector measurement applications.
为了提高风速传感器在高速范围内的性能,本文提出了一种热风速传感器的测量策略,该策略结合了加热元件的恒功率和恒温差驱动模式。基于空气动力学的气流分布特点,提出了顺序测量和修正作为测量风向的方法。此外,还开发了一种使用上述方法的风速和风向测量仪器。测试结果表明,所提出的仪器可以从 0 到 60 m/s 的范围内获得大动态风速测量。在 0-20 m/s 的常见速度范围内,风速测量精度为±0.5 m/s,在 20-60 m/s 的高速范围内,精度为±1 m/s。风向精度在 360°范围内为±3°。所提出的方法和仪器不仅实用,而且能够满足宽范围和大动态风速矢量测量应用的要求。