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首页> 外文期刊>Atmospheric Measurement Techniques >Using computational fluid dynamics and field experiments to improve vehicle-based wind measurements for environmental monitoring
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Using computational fluid dynamics and field experiments to improve vehicle-based wind measurements for environmental monitoring

机译:利用计算流体动力学和现场实验改善基于车辆的环境监测风测量

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摘要

Vehicle-based measurements of wind speed and direction are presently used for a range of applications, including gas plume detection. Many applications use mobile wind measurements without knowledge of the limitations and accuracy of the mobile measurement system. Our research objective for this field-simulation study was to understand how anemometer placement and the vehicle's external airflow field affect measurement accuracy of vehicle-mounted anemometers. Computational fluid dynamic (CFD) simulations were generated in ANSYS Fluent to model the external flow field of a research truck under varying vehicle speed and wind yaw angle. The CFD simulations provided a quantitative description of fluid flow surrounding the vehicle and demonstrated that the change in wind speed magnitude from the inlet increased as the wind yaw angle between the inlet and the vehicle's longitudinal axis increased. The CFD results were used to develop empirical speed correction factors at specified yaw angles and to derive an aerodynamics-based correction function calibrated for wind yaw angle and anemometer placement. For comparison with CFD, we designed field tests on a square, 12.8 km route in flat, treeless terrain with stationary sonic anemometers positioned at each corner. The route was driven in replicate under varying wind conditions and vehicle speeds. The vehicle-based anemometer measurements were corrected to remove the vehicle speed and course vector. From the field trials, we observed that vehicle-based wind speed measurements differed in average magnitude in each of the upwind, downwind, and crosswind directions. The difference from stationary anemometers increased as the yaw angle between the wind direction and the truck's longitudinal axis increased, confirming the vehicle's impact on the surrounding flow field and validating the trends in CFD. To further explore the accuracy of CFD, we applied the function derived from the simulations to the field data and again compared these with stationary measurements. From this study, we were able to make recommendations for anemometer placement, demonstrate the importance of applying aerodynamics-based correction factors to vehicle-based wind measurements, and identify ways to improve the empirical aerodynamic-based correction factors.
机译:基于车辆的风速和方向的测量目前用于一系列应用,包括气体羽流检测。许多应用程序使用移动风测量而不知道移动测量系统的限制和准确性。我们对该实地仿真研究的研究目的是了解风速度计放置和车辆的外部气流场如何影响车辆安装的风管的测量精度。在SNSYS流畅的计算流体动态(CFD)模拟,以模拟不同车速和风偏航角度的研究卡车的外流场。 CFD仿真提供了围绕车辆的流体流动的定量描述,并证明了从入口的风速幅度的变化随着入口和车辆的纵向轴线之间的风偏航角而增加。 CFD结果用于在特定的偏航角度开发经验速度校正因子,并导出用于风偏航角和风速计放置的空气动力学的校正函数。与CFD进行比较,我们设计了在平板的平板线上12.8公里的广场上设计了现场测试,该地形设有固定的声波风脚,位于每个角落。在不同的风力条件和车速下,该路线被驱动。校正基于车辆的风速计测量以消除车速和课程矢量。从现场试验中,我们观察到,基于车辆的风速测量在每个上风,下风和交叉风方向上的平均大小不同。与风向和卡车的纵向轴线之间的偏航角度增加,与静止风速仪的差异增加,确认车辆对周围流动场的影响并验证CFD中的趋势。为了进一步探索CFD的准确性,我们将从模拟的函数应用于现场数据,并再次与静止测量相比。从这项研究中,我们能够提出用于风速计局的建议,证明将基于空气动力学的校正因子应用于基于车辆的风测量的重要性,并确定改善经验基于空气动力学的校正因子的方法。

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