Sodium Silicate Catalyst for Synthesis Monoacylglycerol and Diacylglycerol-Rich Structured Lipids: Product Characteristic and Glycerolysis–Interesterification Kinetics

Inasanti Pandan Wangi, S. Supriyanto, H. Sulistyo, C. Hidayat
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引用次数: 3

Abstract

Sodium silicate as heterogeneous base catalysts is more environmentally friendly and easily separated by filtration. The objective of this research was to evaluate the activated sodium silicate as catalyst for synthesis of monoacylglycerol (MAG) and diacylglycerol (DAG)-rich structured lipids (SLs) from a palm olein-stearin blend. Sodium silicate was activated and functional group was characterized. Reaction was performed using 5% catalyst (w/w) at various reaction temperature (70–120 °C) for 3 h in a batch stirred tank reactor. Physical properties of SLs, such as melting point, slip melting point, and hardness of SLs were determined. Reaction kinetics were also evaluated. The results show that Si−O bending was reduced and shifted to a Si−O−Na and Si−O−Si functional groups after sodium silicate activation. Temperature had a significant effect on SLs composition at higher than 90 °C. An increase in temperature produced more MAG, resulting in better product physical properties. The best reaction condition was at 110 °C. Rate constants and the Arrhenius equation were also obtained for each reaction step. In summary, the activated sodium silicate catalyzed glycerolysis-interesterification reaction, which produced MAG and DAG at temperature higher than 90 °C. Therefore, the physical properties of SLs were improved. Copyright © 2022 by Authors, Published by BCREC Group. This is an open access article under the CC BY-SA License (https://creativecommons.org/licenses/by-sa/4.0). 
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硅酸钠催化剂合成富含单酰基甘油和二酰基甘油的结构脂:产品特性和甘油水解-酯化动力学
硅酸钠作为多相碱催化剂,环境友好,易于过滤分离。本研究的目的是评价活化硅酸钠作为催化剂,从棕榈油-硬脂混合物中合成富含单酰基甘油(MAG)和富含二酰基甘油(DAG)的结构脂(SLs)。对水玻璃进行了活化,并对官能团进行了表征。在间歇式搅拌釜反应器中,以5%催化剂(w/w)在不同反应温度(70 ~ 120℃)下反应3 h。测定了SLs的熔点、滑移熔点、硬度等物理性能。反应动力学也进行了评价。结果表明:硅酸钠活化后,Si - O的弯曲减少,并向Si - O - Na和Si - O - Si官能团转移;温度在高于90℃时对SLs的组成有显著影响。温度的升高会产生更多的MAG,从而使产品的物理性能更好。最佳反应温度为110℃。得到了反应的速率常数和Arrhenius方程。综上所述,活化硅酸钠催化甘油水解-酯化反应,在高于90℃的温度下生成MAG和DAG。因此,SLs的物理性能得到了改善。版权所有©2022作者所有,BCREC集团出版。这是一篇基于CC BY-SA许可(https://creativecommons.org/licenses/by-sa/4.0)的开放获取文章。
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