Improving the Oxygen Removal Process in a Chamber Using Computational Fluid Dynamics Simulations for Pest Control Applications

Oxygen Pub Date : 2024-07-23 DOI:10.3390/oxygen4030017
E. Kaloudis
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Abstract

This study focuses on post-harvest pest management in agriculture, in particular the transition to modified atmospheres as a sustainable alternative to conventional pesticide methods. Using Computational Fluid Dynamics (CFD) simulations, we analysed the dynamics of oxygen distribution within a pest control chamber. We tested four different configurations of nitrogen inlet and outlet positions to determine the most effective setup. The simulations used the twoLiquidMixingFoam solver in OpenFOAM to model gas mixing and diffusion. Our results show that the configuration with the nitrogen inlet at the top and the outlet at the bottom (Case D) was the most efficient. This configuration reached the target oxygen concentration of 1.5% in 4.4 h, significantly faster than the other configurations. These results highlight the importance of inlet and outlet positioning in improving the efficiency of oxygen reduction and ensuring a consistent low oxygen level throughout the chamber. Optimising the placement of nitrogen inlets and outlets has significant potential to improve the effectiveness of modified atmosphere treatments for pest control. Future research should consider additional environmental factors, different storage conditions and insect mortality models to further refine these methods.
利用计算流体动力学模拟改进害虫控制应用中的箱体脱氧过程
这项研究的重点是农业收获后的害虫管理,特别是过渡到改良气氛作为传统杀虫剂方法的可持续替代方法。利用计算流体动力学(CFD)模拟,我们分析了害虫控制室内氧气分布的动态。我们测试了氮气入口和出口位置的四种不同配置,以确定最有效的设置。模拟使用 OpenFOAM 中的双液混合泡沫求解器来模拟气体混合和扩散。结果表明,氮气入口在顶部、出口在底部的配置(情况 D)最为有效。该配置在 4.4 小时内达到 1.5% 的目标氧气浓度,明显快于其他配置。这些结果凸显了入口和出口位置在提高氧气还原效率和确保整个腔室保持稳定低氧水平方面的重要性。优化氮气入口和出口的位置对于提高改良气氛处理的害虫控制效果具有很大的潜力。未来的研究应考虑更多的环境因素、不同的储存条件和昆虫死亡模型,以进一步完善这些方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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