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COMPARISONS OF NUMERICAL METHODS FOR FLUID FLOW SIMULATIONS IN A MICROORGANISM INCUBATING CHAMBER

机译:微生物孵育室中流体流模拟数值方法的比较

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A microorganism incubator has been developed by a prototype performance tests and computational fluid dynamics (CFD) simulations. The microorganism incubator is useful to supply the high quality of fertilizer to agricultural industries. Particularly, a small-sized, movable incubator is desired to be produced for personal agriculturalists. Since the incubator is basically designed as a type of mixing tank for mixing water and powder of microorganism, the decision of an impeller type and size, positions, size of internal parts such as baffles for an efficient mixing process should be considered. To produce the effect of turbulence on the efficient mixing, the location and size of baffles on the chamber wall is particularly significant to the mixing chamber design process. Multiphase CFD simulations are performed to describe the mixing flows inside the tank and the flow physics and patterns are studied in order to find out the optimal conditions for the microorganism incubating. Since water with powder of microorganism is partially filled with the chamber, air-water two phase flows should be considered in the CFD simulation. To simulate such flows, the volume of fluid (VOF) scheme is used. Both steady-state and time-transient simulations are performed and their results between two different time derivative considerations are compared, which enables us to clearly understand the effects of unsteady flow characteristics on the whole flow phenomena in the chamber. Additionally, comparisons of the turbulence modeling for the rotating flows in the chamber will be performed to describe the complex flow phenomena around the rotating impeller and the stationary baffles on the chamber wall. Prior to performing CFD study for the real type of the chamber, the flow simulations for the mixing chamber whose flow characteristics were already studied by experiments are performed with respect to the change of the turbulence modeling and numerical methods. Thus, the proper numerical methods and turbulent modeling are then determined. After validations of the turbulent modeling and numerical schemes, the flow phenomena occurred at the real prototype of the microorganism chamber corresponding to the change of design parameter of the chamber such as the change of the chamber bottom shape, an impeller blade length and the number of baffles will be analyzed.
机译:通过原型性能测试和计算流体动力学(CFD)模拟,开发了微生物孵化器。微生物培养箱可用于向农业产业提供高品质的肥料。特别是,希望为个人农业学家生产小尺寸的可移动孵化器。由于培养箱基本上被设计为用于混合水和微生物粉末的混合罐,因此应考虑叶轮型和尺寸,位置,诸如挡板用于有效混合过程的内部部件的尺寸的决定。为了产生湍流对有效混合的影响,腔室壁上挡板的位置和尺寸对于混合室设计方法特别重要。进行多相CFD模拟以描述罐内的混合流,并研究流量物理和图案,以便在孵育微生物的最佳条件下。由于粉末的微生物粉末被腔室部分地填充,因此应在CFD模拟中考虑空气水两相流量。为了模拟这种流动,使用流体(VOF)方案的体积。进行稳态和时间瞬态模拟,并比较两种不同时间衍生考虑的结果,使我们能够清楚地了解不稳定的流动特性对腔室的整个流动现象的影响。另外,将执行用于腔室中的旋转流的湍流建模的湍流建模,以描述旋转叶轮周围的复杂流动现象和腔室壁上的固定挡板。在对腔室的真实类型进行CFD研究之前,对已经通过实验研究了其流动特性的混合室的流模拟。关于湍流建模和数值方法进行了实验。因此,然后确定适当的数值方法和湍流建模。在弄脏湍流建模和数值方案之后,流动现象发生在与腔室的设计参数的变化相对应的微生物室的真正原型,例如腔室底部形状的变化,叶轮叶片长度和数量将分析挡板。

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