Modeling and analysis of droplet deposition behavior: From the micro and macro perspectives
文献类型: 外文期刊
作者: Qiao, Baiyu 1 ; Liu, Yajia 1 ; He, Xiongkui 1 ; Wang, Lingxiao 1 ; Han, Hu 1 ; Zhang, Lanting 1 ; Qi, Peng 1 ; Liu, Limin 1 ; Han, Leng 1 ; Xu, Shaoqing 1 ; Huang, Zhan 1 ; Wu, Tao 3 ; Yang, Li 3 ;
作者机构: 1.China Agr Univ, Coll Sci, Beijing 100193, Peoples R China
2.China Agr Univ, Coll Agr Unmanned Syst, Beijing 100193, Peoples R China
3.Hubei Acad Agr Sci, Res Inst Fruit & Tea, Wuhan 430064, Peoples R China
关键词: Droplet deposition behavior; Computational fluid dynamics; Spraying parameter; Leaf characteristics
期刊名称:COMPUTERS AND ELECTRONICS IN AGRICULTURE ( 影响因子:8.3; 五年影响因子:8.3 )
ISSN: 0168-1699
年卷期: 2023 年 210 卷
页码:
收录情况: SCI
摘要: The variation of relevant parameters during the spraying process will affect the droplet deposition behavior (DDB) on the plant leaf surface. Hence, a comprehensive analysis and modeling are the basis for model-based control design and performance optimization of spraying efficiency. This paper adopted the method of computational fluid dynamics (CFD) to conduct real-time visualization analysis and numerical modeling establishment of the DDB from the micro and macro perspectives, aiming to obtain the quantitative deposition laws of relevant parameters in the deposition process. The micro results showed that the droplet had different degrees of deposition, bouncing, and diffusion at different blade inclination angles (IAs) and contact angles (CAs). The system's total pressure presented a consistent trend, while there was a sharp increase of about 2-3 times at the moment of impact on the leaf surface. Numerically, the droplet diffusion speed was basically at 5-7 mm/ms. And it presented an exponential function between the diffusion time and the diffusion velocity of the droplets, whose coefficient of determination (R2) equaled 0.73. The DDB of macro analysis clearly explained the change laws of droplet size, residence time, shear stress, and spreading speed. And the mathematical models of the droplet deposition thickness (DDT) on the target surface about time, spraying speed, liquid density, and fluid viscosity were established, which showed a trend of string functions. The growth rate of DDT reached a maximum of 13331% at 40 ms, which could be considered as an economic spraying time. The study achieved a comprehensive dynamic visualization and model-building of relevant spraying parameters and provided an actual reference for the spraying deposition control design and the parameters selection.
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