Yang Shenghui, Li Wenwei, Liu Xingxing, Wang Zimeng, Zheng Yongjun, Tan Yu, Feng Han
College of Engineering, China Agricultural University, Beijing, China.
The Ministry of Education Engineering Research Center of Modern Agricultural Equipment and Facilities, Beijing, China.
Front Plant Sci. 2022 Oct 18;13:1003659. doi: 10.3389/fpls.2022.1003659. eCollection 2022.
In the area of air-assisted spray, conventional detection of speed and direction of the wind fields for spray are separately conducted, and multiple kinds of sensors have to be laid on each coordinate axis during multidimensional detection. It limits the optimization of operation effect of sprayers based on wind-field distribution characteristics. This paper proposes a novel detection method to achieve synchronous measurement of wind speed and direction in three dimensions. Wind flow was considered as vectors and the sensing structure with a regular triangular pyramid shape supported by cantilever pieces was established. Strain gauges were utilized to detect the deformation in each direction by the wind thrust onto a ball before and after wind flow. Moreover, the calculation models of wind speed and direction were developed respectively based on the relationship of 'strains-force-wind pressure-wind velocity' and the principle of space operation of vectors, so multiple parameters of wind fields could be obtained simultaneously. Calibration was conducted based on a wind tunnel and the Testo 405i anemometers. The results showed that: the minimum relative error of wind-speed values was about 0.06%, while the maximum was about 10%. The average relative error of all the directions was less than 5%. Furthermore, the measurement of the wind among artificial tree canopies demonstrated that the proposed method could effectively measure both speed value and direction of the wind among canopies, and it also helped to find the wind distribution characteristics of the fan, SFG4-2R. The results highlighted both the reliability and the practical meaning of the proposed method, which could be a technical solution for measuring and evaluating wind-field characteristics of sprayers.
在风送喷雾领域,传统的喷雾风场速度和方向检测是分开进行的,多维检测时每个坐标轴上都要布置多种传感器。这限制了基于风场分布特性对喷雾机作业效果的优化。本文提出一种新颖的检测方法,以实现三维风速和风向的同步测量。将风流视为矢量,建立了由悬臂片支撑的正三棱锥形状的传感结构。利用应变片检测风流前后球体上的风推力在各个方向上的变形。此外,分别基于“应变-力-风压-风速”的关系和矢量空间运算原理建立了风速和风向的计算模型,从而可同时获取风场的多个参数。基于风洞和德图405i风速仪进行了校准。结果表明:风速值的最小相对误差约为0.06%,最大约为10%。所有方向的平均相对误差小于5%。此外,在人工树冠间的风测量表明,该方法能够有效测量树冠间风的速度值和方向,还有助于发现SFG4-2R型风机的风分布特性。结果突出了该方法的可靠性和实际意义,可为喷雾机风场特性的测量和评估提供一种技术解决方案。