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首页> 外文期刊>Chemical Engineering Research & Design: Transactions of the Institution of Chemical Engineers >Mixing of highly concentrated slurries of large particles: Applications of electrical resistance tomography (ERT) and response surface methodology (RSM)
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Mixing of highly concentrated slurries of large particles: Applications of electrical resistance tomography (ERT) and response surface methodology (RSM)

机译:大浓缩浆料的混合大颗粒:电阻断层扫描(ERT)和响应表面方法(RSM)的应用

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Industrial applications of solid-liquid mixing generally comprise of high solids loadings with a wide range of large particles. Since the required power for the mixing of highly concentrated slurries is extremely high, it is critical to accurately assess the just-suspended impeller speed, power number as well as the degree of homogeneity. The major objective of this study was to analyze the suspension of large solid particles in highly concentrated slurries. Design of experiment (Box-Behnken Model) was used for the response surface methodology (RSM) analysis. Electrical resistance tomography (ERT) was employed to measure the extent of homogeneity in a slurry reactor. The effects of different variables such as impeller type (PBT, PF3, and A310 impellers), impeller clearance (from 0.050 to 0.133 m), solids loading (30 <= x (wt%) <= 55), and particle size (753, 2900, and 5000 mu m) were investigated on the performance of the solid-liquid mixing operation. The collected data revealed that the average Zwietering solids loading exponent increased from n=0.13 at low solids concentrations (5 < x (wt%) <= 20) to n = 0.38 for the high solids loadings (30 <= x (wt%) <= 55). It was found that in a slurry reactor the particle size, solids loading, and their interaction had a significant impact on the just-suspended impeller speed for the highly concentrated slurries of large particles. (C) 2019 Institution of Chemical Engineers. Published by Elsevier B.V. All rights reserved.
机译:固液混合的工业应用通常包括具有宽范围大的颗粒的高固体载荷。由于对高度浓缩浆料混合的所需功率非常高,因此准确地评估刚刚悬浮的叶轮速度,功率数以及均匀程度至关重要。本研究的主要目的是分析高浓缩浆料中大固体颗粒的悬浮液。实验设计(Box-Behnken模型)用于响应面方法(RSM)分析。电阻断层摄影(ERT)用于测量浆料反应器中均匀性的程度。不同变量如叶轮型(PBT,PF3和A310叶轮),叶轮间隙(0.050至0.133μm),固体载荷(30 <= x(wt%)<= 55),以及粒径(753研究了2900和5000μm)对固液混合操作的性能进行了研究。收集的数据显示,对于高固体载荷(30 <= x(wt%) <= 55)。发现,在浆料反应器中,粒度,固体负载和它们的相互作用对大浓度的大颗粒的高浓缩浆料的刚性叶轮速度产生显着影响。 (c)2019化学工程师机构。 elsevier b.v出版。保留所有权利。

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