首页> 外文期刊>International Communications in Heat and Mass Transfer >Mass transfer studies in RDC column by the coupling effects of perforated structure and reactive extraction of Mo(Ⅵ) and W(Ⅵ) from sulfate solution
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Mass transfer studies in RDC column by the coupling effects of perforated structure and reactive extraction of Mo(Ⅵ) and W(Ⅵ) from sulfate solution

机译:RDC柱中的传质研究通过硫酸盐溶液的穿孔结构和反应萃取Mo(Ⅵ)和W(Ⅵ)的耦合效应

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Solvent extraction of molybdenum (Ⅵ) and tungsten (Ⅵ) by synergism of the mixture of D_2EHPA and TBP were conducted in the RDC extractor with perforated structure. The initial aqueous pH, extractant concentration, ammonium hydroxide concentration as a stripping agent, and synergistic enhancement factor were optimized in the initial experiments before collecting column data. In the RDC column, the influence of agitation rate and inlet phase velocities were examined on the hydrodynamic velocities, mass transfer data, and distribution coefficients. The finding data indicated that the impact of agitation speed on the distribution coefficients of molybdenum and tungsten is considerable in comparison the inlet phase flow rates. Published empirical models for estimating the slip and characteristic velocities were compared with the solvent extraction data, and the modified models were presented by considering the reactive extraction. Mass transfer performance based on the dispersed phase was studied by applying the axial dispersion model. Column performance enhances the increment of the operational variables such as agitation speed, inlet solvent phase flow rate, and inlet aqueous phase flow rates, but the variations of agitation speed and solute transfer direction have a high impact on this phenomenon. The previous models for estimating the mass transfer coefficients were compared with the present work. The published models failed to acceptable estimate the mass transfer evaluation due to column geometry and reactive extraction systems. Finally, the new models were proposed by using the dimensionless analysis methods for obtaining the enhancement factor in both extraction and stripping stages.
机译:通过与多孔结构的RDC提取器进行D_2ehPA和TBP混合物的协同作用,通过穿孔结构进行钼(Ⅵ)和钨(Ⅵ)的溶剂萃取。在收集柱数据之前,在初始实验中优化了初始水性pH值,萃取剂浓度,氢氧化铵浓度,以及协同增强因子。在RDC柱中,在流体动力学速度,质谱数据和分配系数上检查搅拌速率和入口相速度的影响。该发现数据表明,相比之下,搅拌速度对钼和钨的分布系数的影响是相当大的。将用于估计滑动和特征速度的发表的经验模型与溶剂萃取数据进行比较,并考虑反应性提取来提出改性模型。通过施加轴向分散模型研究基于分散相的传质性能。柱性能提高了操作变量的增量,例如搅拌速度,入口溶剂相流速和入口水相流速,但搅拌速度和溶质转移方向的变化对这种现象具有很高的影响。将以前的用于估计传质系数的模型与本作作品进行比较。由于柱几何和反应提取系统,已发布的模型无法接受估计传质评估。最后,通过使用无量纲分析方法提出了新模型,以获得提取和汽提阶段的增强因子。

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