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New understanding of a hydrocyclone flow field and separation mechanism from computational fluid dynamics

机译:通过计算流体动力学对水力旋流器流场和分离机理的新认识

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The flow field of a 2 in. hydrocyclone is shown to be significantly asymmetric without precession, through both computational fluid dynamics (CFD) and experimental observation. Hence the application of full three-dimensional modelling is demonstrated to be essential. Further. CFD predicts that the axial pressure is not below atmospheric prior to development of the air core and that such development is not pressure driven. In fact, initial insight into a cause of instability of the air-core is identified from the CFD and supported through experimental observation. The predictions use the second-order differential-stress turbulence model which has previously been identified to represent a minimum model. Lastly, the inclusion of full three-dimensional modelling and high-order turbulence modelling leads to a new understanding of particle-separation classification within the hydrocyclone, including a significant stochastic component.
机译:通过计算流体动力学(CFD)和实验观察,显示了2英寸水力旋流器的流场是不对称的,没有进动。因此,证明了完整的三维建模的应用是必不可少的。进一步。 CFD预测,在形成空心之前,轴向压力不会低于大气压,并且这种发展不是由压力驱动的。实际上,可以从CFD中识别出对空气芯不稳定原因的初步见解,并通过实验观察得到支持。预测使用二阶差分应力湍流模型,该模型先前已被确定为代表最小模型。最后,完整的三维模型和高阶湍流模型的引入使人们对水力旋流器内的颗粒分离分类有了新的认识,其中包括大量的随机成分。

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