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Mathematical Modelling of Airflow and Thermal State in Large Aerated Grain Storage

机译:大型充气粮库内气流和热态的数学建模

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A mathematical model, algorithm and software were developed for simulation of airflow and heat transfer in aerated soya bean storage under non-uniform conditions of the seed mass. The problems of airflow in an aerated soya bean store and propagation of a cooling zone through a grain bulk were solved consecutively. To calculate airflow lines in silos, a model developed for isothermal flow was used. To simulate the cooling dynamics of the soya bean mass, three models were analysed and compared with experimental data. The first method is based on the solution of system of partial differential equations, describing the heat and mass transfer and conservation of energy. In second method, the deep bed is hypothetically divided into a limited number of thin layers ('homogeneous reactors'), in which the respective temperatures of the grain and of the surrounding air are considered identical. Experimental equipment was developed to study soya bean cooling dynamics for different airflow velocities in deep beds of uniform and variable cross-section. Using a homochronous number as the argument, the dimensionless temperature data in a deep bed of uniform cross-section in different sections at various speeds were satisfactorily described by generalising empirical dependence. The third method of simulating the cooling dynamics of the soya bean mass, based on the use of this dependence, gave the best results in comparison with other methods considered. This method was adapted for a variable section deep bed, tested on experimental data and used for modelling the thermal state of silos.
机译:开发了数学模型,算法和软件,用于在种子质量不均匀的条件下模拟充气大豆存储中的气流和传热。连续解决了充气大豆存储中的气流问题和冷却区通过谷物散装的问题。为了计算筒仓中的气流线,使用了为等温流开发的模型。为了模拟大豆物料的冷却动力学,分析了三个模型并将其与实验数据进行比较。第一种方法基于偏微分方程组的解,描述了传热传质和能量守恒。在第二种方法中,假设将深层划分为有限数量的薄层(“均质反应堆”),其中认为谷物和周围空气的各自温度相同。开发了实验设备,以研究均匀横截面可变的深床中不同气流速度下的大豆冷却动力学。使用一个同步数作为参数,通过归纳经验依赖关系,令人满意地描述了在不同速度下不同截面的均匀截面深床中的无量纲温度数据。基于这种依赖性,模拟大豆物料冷却动力学的第三种方法与所考虑的其他方法相比,可获得最佳结果。该方法适用于变截面深床,根据实验数据进行测试,并用于对筒仓的热状态进行建模。

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