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3D Orchard Canopy Architectural Modelling for Use in Airflow and Drift Predictions

机译:用于气流和漂移预测的3D果园冠层建筑模型

摘要

The current trend in studying the interaction of vegetation canopies with their environment and numerical prediction of drift is mainly based on porous media approaches. The methods involve several approximations and estimations that give the global effect of the canopies to airflow and drift without investigating the detailed local effects of the vegetation elements. These approaches also require precise estimation of certain parameters such as drag coefficient and leaf area density. To make some advances in the field and to address some of the above problems a new approach needed to be developed, where real canopy architecture was modelled and linked to a computational Fluid Dynamics (CFD) soft ware to model airflow through the canopies. This helped to investigate the real effects of the vegetation elements on atmospheric airflow which directly affects drift and drift prediction. In this work, 3D orchard canopy architecture was modelled using a combined discrete-continuous plant growth simulation model, which considered the phenomenological plant growing behaviour and the effect of temperature. Two canopy geometries were introduced into a fluid domain and the domain was meshed. Airflow around and through the canopy was simulated using the Reynolds-averaged Navier-Stokes (RANS) equations and k- turbulence model. The airflow simulation results agreed both quantitatively with wind tunnel validation experiment and qualitatively with previous works done in the area, ensuring the prospect of the architectural modelling for further application. It was also possible to show the detailed effects of canopy elements on airflow.
机译:研究植被冠层与环境的相互作用和漂移数值预测的当前趋势主要是基于多孔介质方法。该方法涉及几种近似和估算,这些估算和估算给出了冠层对气流和漂移的整体影响,而没有研究植被要素的详细局部影响。这些方法还需要精确估计某些参数,例如阻力系数和叶面积密度。为了在该领域取得进展并解决上述一些问题,需要开发一种新方法,其中对真实的机盖架构进行建模,并将其链接到计算流体动力学(CFD)软件,以模拟通过机盖的气流。这有助于调查植被要素对大气气流的实际影响,这些影响直接影响漂移和漂移预测。在这项工作中,使用组合的离散连续植物生长模拟模型对3D果园树冠结构进行建模,该模型考虑了现象学植物的生长行为和温度的影响。将两个冠层几何体引入到流体域中,并对该域进行了网格划分。使用雷诺平均的Navier-Stokes(RANS)方程和k-湍流模型模拟了周围和通过冠层的气流。气流模拟结果在定量上与风洞验证实验相吻合,在质量上与该地区以前所做的工作吻合,从而确保了建筑模型的进一步应用前景。还可能显示冠层元素对气流的详细影响。

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