SYSTEMATIC METHODOLOGY FOR THE DESIGN OF BINARY SOLVENT BLENDS FOR EXTRACTION OF HERBAL PHYTOCHEMICALS WITH COST EVALUATION

S. N. H. Mohammad Azmin, M. S. Mat Nor
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Abstract

The trial and error solvent selection method to obtain herbal phytochemicals is time consuming and limited by effort and cost. The combination of property prediction models with computer-assisted search is one way to overcome these drawbacks. Thus, the main objective of this work is to present a computer-aided methodology for the design of solvent blends in extracting herb phytochemicals optimally with cost evaluation. The methodology can be summarised into two main stages, namely, model-based design and experimental-verification stages. The result discussed in this paper is only for the first stage. The extraction of kaempferol from Kacip Fatimah herb is used as a base case study that follows all of the listed tasks. Five optimal binary solvent blends have been identified namely, methanol:isobutyraldehyde (M:IB), methanol:n-propionaldehyde (M:PP), methanol:water (M:W), methanol: ethyl acetate (M:EA) and methanol: acetic acid (M:AA). The M:IB solvent blend is able to extract the highest kaempferol yield while M:PP gives the highest profit.
二元溶剂共混萃取植物化学成分的系统方法设计及成本评估
采用试错溶剂法提取植物化学成分耗时长,且受精力和成本的限制。将属性预测模型与计算机辅助搜索相结合是克服这些缺点的一种方法。因此,本工作的主要目的是提出一种计算机辅助方法,用于设计最佳提取草药植物化学物质的溶剂混合物并进行成本评估。该方法可以概括为两个主要阶段,即基于模型的设计和实验验证阶段。本文所讨论的结果仅适用于第一阶段。从Kacip Fatimah草药中提取山奈酚被用作基础案例研究,遵循所有列出的任务。确定了五种最佳二元溶剂混合物,即甲醇:异丁醛(M:IB)、甲醇:正丙醛(M:PP)、甲醇:水(M:W)、甲醇:乙酸乙酯(M:EA)和甲醇:乙酸(M:AA)。M:IB溶剂混合萃取山奈酚得率最高,而M:PP溶剂混合萃取利润最高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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