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Numerical simulation of seed motion characteristics of distribution head for rapeseed and wheat

机译:油菜籽和小麦分布头种子运动特性的数值模拟

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The distribution head and its impact on seed distribution uniformity were the core parts of an air-assisted centralized seed-metering device. Numerical simulation of seed motion in the distribution head was carried out with a coupling approach using the Computational Fluid Dynamics (CFD) and Discrete Element Method (DEM). The seed migration trajectory and distribution behavior were tracked. The variation coefficient of seeds distribution (CV), airflow velocity field and seed motion characteristics for different structures of streamlined tube and lid, airflow velocities, and seed feed rates were calculated and analyzed. The structural parameters mainly included the streamlined angle (psi), radius of baseline (R), outlet diameter of streamlined angle (d(1)), lid angle (alpha), and installation location (a). Simulation results showed that, with the streamlined angle increased from 10 degrees to 50 degrees, the variation coefficient of seeds distribution decreased initially and then increased for an inlet diameter of 20 mm and an airflow velocity of 20 m/s. When R was less than 20 mm, the air pressure loss and seed resultant force increased obviously. The seeds distribution was more uniform when psi = 60 degrees, R = 40 mm, and a = 120 degrees. The seed resultant force and resultant velocity increased with the increasing of airflow velocity. The distribution uniformity and power consumption improved at the airflow velocity of 20-24 m/s for rapeseed and 24-28 m/s for wheat of different seed feed rates, respectively. This research using the CFD-DEM coupling approach would be helpful in improving distribution uniformity, explaining the seed distribution mechanism, and optimizing the structure of distribution head.
机译:分布头及其对种子分布均匀性的影响是空气辅助集中式种子计量装置的核心部分。使用计算流体动力学(CFD)和离散元件(DEM)的耦合方法进行分布头中种子运动的数值模拟。跟踪种子迁移轨迹和分布行为。计算和分析了用于不同结构的不同结构的种子分布(CV),气流速度场和种子运动特性的变化系数,并分析。结构参数主要包括流线型角度(PSI),基线半径(R),流线型角度(D(1)),盖角(α)和安装位置(A)的出口直径。仿真结果表明,流线型从10度增加到50度的流线型,最初的种子分布的变化系数降低,然后增加20mm的入口直径,气流速度为20m / s。当R小于20毫米时,空气压力损失和种子产生的力明显增加。当PSI = 60度,R = 40mm和A = 120度时,种子分布更均匀。随着气流速度的增加,种子得到的力和结果速度增加。分布均匀性和功耗分别在20-24m / s的气流速度下改善了油菜籽和24-28 m / s,分别用于不同种子进料速率的小麦。本研究采用CFD-DEM耦合方法将有助于提高分布均匀性,解释种子分布机制,并优化分配头的结构。

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