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Comparison of Agitators Performance for Particle Suspension in Top-Covered Unbaffled Vessels

机译:顶盖无挡板容器中颗粒悬浮液搅拌器性能的比较

摘要

Power savings is a problem of crucial importance nowadays. In process industry, suspension of solid particles into liquids is usually obtained by employing stirred tanks, which often are very power demanding. Notwithstanding tanks provided with baffles are traditionally adopted for this task, recent studies have shown that power reductions can be obtained in top-covered unbaffled vessels. In the present work experiments were carried out in a top-covered unbaffled vessel with a diameter T=0.19m and filled with distilled water and silica particles. Two different turbines were tested: a standard six-bladed Rushton Turbine (RT) and a 45° four bladed Pitched Blade Turbine (PBT). For the case of the PBT both the up-pumping (PBT-Up) and the downpumping (PBT-Down) operation mode were tested. Two different impeller sizes D (T/3 and T/2) and clearances C (T/3 and T/10) were investigated. The effects of particle size and concentration were also assessed. Investigations concern the assessment of the minimum impeller speed for complete suspension (Njs) along with the measurement of the relevant power consumption (Pjs) aiming at identifying the most efficient tank-turbine configuration among those investigated here. Results were also compared with corresponding ones pertaining to baffled tanks (obtained via correlations available in the literature). Results have shown that the RT with D=T/3 and C=T/3 and the PBT-Up with D=T/2 and C=T/10 appear to be the most convenient (least power demanding) options. Finally, a significant power saving with respect to the most efficient baffled configurations was observed thus confirming the convenience of operating solid-liquid suspensions in an unbaffled system for all those processes where the mixing time is not a limiting factor.
机译:如今,节电已成为至关重要的问题。在加工工业中,通常通过使用搅拌罐来将固体颗粒悬浮在液体中,而搅拌罐通常需要很高的功率。尽管传统上采用带有挡板的储罐来完成此任务,但最近的研究表明,在顶部覆盖的无挡板容器中可以降低功率。在目前的工作中,实验在直径为T = 0.19m的顶盖无挡板容器中进行,并充满蒸馏水和二氧化硅颗粒。测试了两种不同的涡轮机:标准的六叶片Rushton涡轮(RT)和45°四叶片变桨叶片涡轮(PBT)。对于PBT,同时测试了上泵(PBT-Up)和下泵(PBT-Down)操作模式。研究了两种不同的叶轮尺寸D(T / 3和T / 2)和间隙C(T / 3和T / 10)。还评估了粒径和浓度的影响。调查涉及评估完全悬挂的最小叶轮速度(Njs)以及相关功耗(Pjs)的测量,目的是确定此处研究的最高效的水轮机配置。还将结果与有关折流式储罐的相应结果(通过文献中的相关性获得)进行了比较。结果表明,具有D = T / 3和C = T / 3的RT和具有D = T / 2和C = T / 10的PBT-Up似乎是最方便(要求最低功率)的选项。最后,观察到与最有效的折流板配置有关的大量功率节省,从而确认了对于所有混合时间不是限制因素的工艺,在无折流板系统中操作固液悬浮液的便利性。

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