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Simulation of granular and gas-solid flows using discrete element method.

机译:使用离散元方法模拟颗粒和气固流动。

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In recent years there has been increased research activity in the experimental and numerical study of gas-solid flows. Flows of this type have numerous applications in the energy, pharmaceuticals, and chemicals process industries. Typical applications include pulverized coal combustion, flow and heat transfer in bubbling and circulating fluidized beds, hopper and chute flows, pneumatic transport of pharmaceutical powders and pellets, and many more. The present work addresses the study of gas-solid flows using computational fluid dynamics (CFD) techniques and discrete element simulation methods (DES) combined. Many previous studies of coupled gas-solid flows have been performed assuming the solid phase as a continuum with averaged properties and treating the gas-solid flow as constituting of interpenetrating continua. Instead, in the present work, the gas phase flow is simulated using continuum theory and the solid phase flow is simulated using DES. DES treats each solid particle individually, thus accounting for its dynamics due to particle-particle interactions, particle-wall interactions as well as fluid drag and buoyancy. The present work involves developing efficient DES methods for dense granular flow and coupling this simulation to continuum simulations of the gas phase flow.; Simulations have been performed to observe pure granular behavior in vibrating beds. Benchmark cases have been simulated and the results obtained match the published literature. The dimensionless acceleration amplitude and the bed height are the parameters governing bed behavior. Various interesting behaviors such as heaping, round and cusp surface standing waves, as well as kinks, have been observed for different values of the acceleration amplitude for a given bed height. Furthermore, binary granular mixtures (granular mixtures with two particle sizes) in a vibrated bed have also been studied.; Gas-solid flow simulations have been performed to study fluidized beds. Benchmark 2D fluidized bed simulations have been performed and the results have been shown to satisfactorily compare with those published in the literature. A comprehensive study of the effect of drag correlations on the simulation of fluidized beds has been performed. It has been found that nearly all the drag correlations studied make similar predictions of global quantities such as the time-dependent pressure drop, bubbling frequency and growth.; In conclusion, discrete element simulation has been successfully coupled to continuum gas-phase. Though all the results presented in the thesis are two-dimensional, the present implementation is completely three dimensional and can be used to study 3D fluidized beds to aid in better design and understanding. Other industrially important phenomena like particle coating, coal gasification etc., and applications in emerging areas such as nano-particle/fluid mixtures can also be studied through this type of simulation. (Abstract shortened by UMI.)
机译:近年来,在气固流的实验和数值研究中,研究活动有所增加。这种类型的流量在能源,制药和化工过程工业中有许多应用。典型的应用包括煤粉燃烧,鼓泡和循环流化床中的流动和传热,料斗和溜槽流,药物粉末和颗粒的气动运输等等。本工作着重于使用计算流体力学(CFD)技术和离散元模拟方法(DES)相结合的气固流研究。之前已经进行了许多关于气固耦合的研究,假设固相是具有平均性质的连续体,并且将气固流视为互穿连续体的构成。取而代之的是,在目前的工作中,使用连续介质理论模拟了气相流,而使用DES模拟了固相流。 DES分别处理每个固体颗粒,因此考虑了由于颗粒间相互作用,颗粒间壁相互作用以及流体阻力和浮力而产生的动力学。目前的工作涉及开发用于致密颗粒流动的高效DES方法,并将该模拟与气相流动的连续模拟耦合起来。已经进行了模拟以观察振动床中的纯颗粒行为。对基准案例进行了模拟,获得的结果与已发表的文献相符。无量纲加速度幅度和床高是控制床性能的参数。对于给定的床高,对于不同的加速度振幅值,已经观察到各种有趣的行为,例如堆积,圆形和尖顶表面驻波以及扭结。此外,还研究了振动床中的二元颗粒混合物(两种粒径的颗粒混合物)。已经进行了气固流模拟以研究流化床。进行了基准二维流化床模拟,结果表明与文献中发表的结果令人满意。进行了阻力相关性对流化床模拟的影响的综合研究。已经发现,几乎所有研究的阻力相关性都对整体数量做出了类似的预测,例如随时间变化的压降,冒泡频率和增长。总之,离散元模拟已成功地与连续气相耦合。尽管论文中提出的所有结果都是二维的,但本实现完全是三维的,可用于研究3D流化床,以帮助更好地进行设计和理解。也可以通过这种类型的模拟研究其他工业上重要的现象,例如颗粒涂层,煤气化等,以及在新兴领域的应用,例如纳米颗粒/流体混合物。 (摘要由UMI缩短。)

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