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Analysis of Airflow Field of Toss Device of Yellow Corn Forage Harvester

机译:黄玉米牧草收割机折腾装置气流场分析

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Use a very important tool called ICEM CFD integrated in ANSYS Workbench to mesh the model of toss device and then apply the software FLUENT to simulate numerically and analyze the velocity distribution and pressure distribution, based on the RNG k-epsilon model. Numerical simulation results showed that air flow field and pressure distribution of toss device were asymmetry. Maximum wind speed of fan exit was 42.8 m/s, which met the actual needs. In a word, the design of toss device was reasonable. But there was the existence of the secondary flow in toss cylinder, making some gas couldn't flow smoothly, thus affecting delivery efficiency. Through analysis of the stress field in the blower, the results showed that static pressure of windward side blade increased from roots to ends and flow channels between fan blades in different positions showed different static pressure characteristics. The maximum static pressure of windward side blade was 878 pa, the minimum static pressure of lee side blade just passing the export of fan was -950 pa, the negative pressure meaning suction. The conclusions provided a reference for structural optimization and performance improvement of the toss device of Yellow Corn Forage Harvester.
机译:使用一个称为ICEM CFD的非常重要的工具集成在ANSYS Workbench中以网格网格造型,然后应用软件流畅的软件,以数字方式模拟并分析基于RNG K-EPSILON模型的速度分布和压力分布。数值模拟结果表明,折腾装置的空气流场和压力分布是不对称性的。风扇出口的最大风速为42.8米/秒,符合实际需求。总之,折腾设备的设计合理。但是存在折腾圆筒中的二次流动,使一些气体不能平稳流动,从而影响输送效率。通过分析鼓风机中的应力场,结果表明,迎风侧叶片的静压从根部增加到末端,不同位置的风扇叶片之间的流动通道显示出不同的静压特性。迎风侧叶片的最大静压为878Pa,李侧叶片的最小静压刚刚通过风扇的出口为-950 pa,负压意味着吸力。结论提供了黄色玉米饲料收割机折腾装置的结构优化和性能改进的参考。

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