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首页> 外文期刊>The Canadian Journal of Chemical Engineering >PUMPING CHARACTERISATION OF THE MAXBLEND IMPELLER FOR NEWTONIAN AND STRONGLY NON-NEWTONIAN FLUIDS
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PUMPING CHARACTERISATION OF THE MAXBLEND IMPELLER FOR NEWTONIAN AND STRONGLY NON-NEWTONIAN FLUIDS

机译:牛顿流体和强非牛顿流体的Maxblend叶轮的泵浦特性

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摘要

This paper examines the pumping mechanisms generated by the Maxblend impeller. Simulation results obtained with the lattice Boltzmann method (LBM) are presented for Newtonian fluids (Re=2-140) and strongly shear-thinning fluids (Re_g = 0.1-50) obeying the Carreau-Yasuda model with a very small power index (n=0.05). In the Newtonian case, the pumping numbers predicted by the LBM are shown to compare favourably to those obtained with the finite element (FEM) as well as to experimental data based on the decolonisation method. These results indicate a small pumping capacity in the deep laminar regime followed by its sharp increase in the transitional regime, a phenomenon which is explained by examining the flow field simulated with the LBM and the FEM and measured through PIV. In the case of the strongly shear thinning fluids, the impact of the rheology on pumping is investigated. The flow fields and so-called pumping volumes predicted with the LBM reveal, similarly to the Newtonian case, a change in the structure of the axial and (secondary) radial flow when the Reynolds number is increased. Viscosity contours suggest that this phenomenon is in fact related to the occurrence of zones with very different apparent viscosities, which explains the problematic flow patterns observed experimentally with the PIV.
机译:本文研究了Maxblend叶轮产生的泵送机理。对于牛顿流体(Re = 2-140)和强剪切稀化流体(Re_g = 0.1-50)服从Carreau-Yasuda模型,其功率指数非常小(n),给出了用格子Boltzmann方法(LBM)获得的模拟结果。 = 0.05)。在牛顿的情况下,由LBM预测的泵送数显示出与有限元(FEM)所获得的泵送数以及基于非殖民化方法的实验数据相比具有优势。这些结果表明,在深层流状态下泵送能力小,随后在过渡状态下急剧增加,这种现象可以通过检查用LBM和FEM模拟并通过PIV测量的流场来解释。在强剪切稀化流体的情况下,研究了流变学对泵送的影响。与牛顿的情况类似,用LBM预测的流场和所谓的抽水量表明,当雷诺数增加时,轴向和(二次)径向流的结构发生变化。粘度等值线表明该现象实际上与表观粘度差异很大的区域的出现有关,这解释了用PIV实验观察到的有问题的流动模式。

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