Institute of Agricultural Facilities and Equipment, Jiangsu Academy of Agricultural Sciences, Nanjing, China.
Key Laboratory of Horticultural Equipment, Ministry of Agriculture and Rural Affairs, Nanjing, China.
Pest Manag Sci. 2024 Nov;80(11):6007-6023. doi: 10.1002/ps.8333. Epub 2024 Aug 13.
High-efficient pesticide application equipment for protected cultivation is scarce. In response, a fixed-pipe twin-fluid clod fogger (FTCF) was proposed as a potential solution. To investigate the optimal nozzle layout and spray performance, a computational fluid dynamics (CFD) model was used to study the airflow distribution and spray deposition of a FTCF with different nozzle settings using the Euler-Lagrange approach. Specifically, two piping configurations, middle-cross-inverted (MCI) and bilateral-malposed-opposite (BMO), were combined with three nozzle spacings (2 m, 3 m, 4 m) resulting in six nozzle settings. Additionally, a greenhouse spray trial was conducted to test the performance of FTCF with the selected nozzle settings and to validate the model.
The simulation results revealed that MCI piping configuration exhibited a stronger airflow disturbance compared to BMO configuration, indicating a more significant air-guided effect in the MCI configuration. Combining this finding with the ground droplet distribution analysis of MCI piping configuration, it was observed that MCI-2 m had the lowest coefficient of variation (CV) for ground deposition (20.56%). Consequently, MCI-2 m was determined as the most optimal nozzle setting. Verification results demonstrated a high consistency between experimental and simulated spray deposition results.
The FTCF system effectively generated a three-dimensional airflow field throughout the greenhouse environment. Furthermore, jet flow produced by FTCF disrupted the overall airflow pattern within the greenhouse space which facilitated droplet suspension and dispersion. This study provides valuable insights and innovative ideas for enhancing pesticide application technologies in protected cultivations. © 2024 Society of Chemical Industry.
缺乏用于设施保护栽培的高效施药设备。针对这一问题,提出了一种固定管道双流雾炮(FTCF)作为潜在的解决方案。为了研究最优的喷嘴布局和喷雾性能,采用欧拉-拉格朗日方法,利用计算流体动力学(CFD)模型对不同喷嘴设置下 FTCF 的气流分布和喷雾沉积进行了研究。具体来说,将两种管道配置(中交叉倒置(MCI)和双侧错位相反(BMO))与三种喷嘴间距(2m、3m、4m)相结合,共得到六种喷嘴设置。此外,还进行了温室喷雾试验,以测试选定喷嘴设置下 FTCF 的性能,并验证模型。
模拟结果表明,与 BMO 配置相比,MCI 管道配置表现出更强的气流干扰,表明在 MCI 配置中具有更显著的空气引导效应。将这一发现与 MCI 管道配置的地面液滴分布分析相结合,发现 MCI-2m 的地面沉积变异系数(CV)最低(20.56%)。因此,MCI-2m 被确定为最优的喷嘴设置。验证结果表明,实验和模拟喷雾沉积结果具有高度一致性。
FTCF 系统有效地在整个温室环境中产生了三维气流场。此外,FTCF 产生的射流破坏了温室空间内的整体气流模式,有利于液滴悬浮和分散。本研究为增强设施保护栽培中的农药施用技术提供了有价值的见解和创新思路。© 2024 英国化学工程师学会。