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Mathematical Modelling Of Backward Extraction Mixed Reverse Micelle Of Amoxicillin By Surface Response Methodology (RSM)

机译:表面反应方法(RSM)对阿莫西林向后萃取混合反胶束的数学建模

摘要

One of important factor in reverse micelle extraction is backward transfer. It is important to investigate the favourable conditions for backward transfer from reverse micellar phase to an organic phase. The back extraction of amoxicillin was studied using mixed reverse micelle with combination sodium bis(2-ethylhexyl) sulfosuccinate (AOT) and TWEEN 85. Backward extraction was optimized via response surface methodology (RSM). For mathematical modelling, Central Composite Design (CCD) was used to studies the significant of independent variables: pH of stripping solution (5-8), KCl concentration (2.0 -16.0 g/L) and backward extraction time (5-35 minutes) on the response of the process. Optimized backward extraction for maximized final mass of amoxicillin extracted into aqueous were pH of stripping solution (6.58), backward time (19.8 minutes) and concentration of KCl (11.02 g/L) on the response of the process. Result showed that the experimental data was fitted well to a second-order polynomial model.
机译:反胶束提取的重要因素之一是向后转移。研究从逆胶束相向有机相的反向转移的有利条件非常重要。使用混合反胶束与双(2-乙基己基)磺基琥珀酸钠(AOT)和TWEEN 85组合,研究了阿莫西林的反萃取。通过响应表面方法(RSM)优化了反萃取。对于数学建模,使用中央复合设计(CCD)研究自变量的显着性:汽提溶液的pH(5-8),KCl浓度(2.0 -16.0 g / L)和反萃取时间(5-35分钟)对过程的响应。优化的反萃取工艺可最大程度地提高阿莫西林提取到水溶液中的最终质量,包括汽提溶液的pH(6.58),反萃取时间(19.8分钟)和反应过程中KCl的浓度(11.02 g / L)。结果表明,实验数据非常适合二阶多项式模型。

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