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Modeling Turbulent Multiphase Flow in Design of Nut Harvesters with Reduced Dust Emission and Low Power Demand

机译:减少粉尘排放和低功率需求的坚果收割机设计中的湍流多相流建模

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摘要

Computational fluid dynamics (CFD) modeling was evaluated for a physical prototype nut harvester as a method to determine model effectiveness for predicting dust emissions and reduced power demand in terms of pressure drop. Particle-laden gas was dilute and highly turbulent with an estimated particle volume fraction of 0.24% and gas flow Reynolds number of >10~5. Airflow simulations were based on the realizable k-emega and Reynolds stress models; the stochastic Lagrangian discrete phase model determined particle collection and tracking characteristics. The predicted results of the gas flows from CFD simulations followed the trends of experimental data. CFD-guided design reduced airflow pressure drop by 43% to 54%, resulting in a corresponding reduction in power demand based on pressure drop measurements and simulations. Particle collection efficiencies for particle diameters of 10 mu m were increased by 3.6 to 5.4 times. The particle flow model was partially validated, although additional measurements of the particle collection efficiencies and particle locations may be required. The results indicated that nut harvester design modifications can be guided by CFD modeling.
机译:对物理原型坚果收割机进行了计算流体动力学(CFD)建模评估,以此来确定用于预测粉尘排放并降低压降方面的电力需求的模型有效性。含颗粒气体稀且湍流,估计颗粒体积分数为0.24%,气流雷诺数> 10〜5。气流模拟基于可实现的k-emega和雷诺应力模型;拉格朗日随机离散相模型确定了颗粒的收集和跟踪特性。 CFD模拟得出的气流预测结果遵循了实验数据的趋势。 CFD指导的设计将气流压降降低了43%至54%,从而基于压降测量和模拟,相应地减少了电力需求。粒径为10μm的颗粒收集效率提高了3.6到5.4倍。尽管可能需要对粒子收集效率和粒子位置进行额外的测量,但粒子流模型已得到部分验证。结果表明,可以通过CFD建模指导螺母收割机的设计修改。

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