首页> 外文期刊>Transactions of The Institution of Chemical Engineers. Process Safety and Environmental Protection, Part B >Catalytic upgrading of bio oil model compound into polyol ester via green alginate catalyzed esterification reaction
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Catalytic upgrading of bio oil model compound into polyol ester via green alginate catalyzed esterification reaction

机译:通过绿藻催化酯化反应将生物油模型化合物生物油模型化合物的催化升级

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Recent studies have successfully synthesized polyol ester of vegetable oil origin for the application of biolubriant, which though biodegradable, met with the challenge of food chain disruption. Therefore, biomass-derived bio oil is a potential alternative for the production of polyol ester in the application of biolubricant production. Due to its high oxygen content and low storage stability, further upgrading process such as esterification is necessary before bio oil is ready to be used as biolubricant. Acetic acid (AcA), a major component found in bio oil was used for the catalytic esterification with neopentyl glycol (NPG) in the presence of bio-polymer acid catalyst, aluminium alginate (Al-A) and ferric alginate (Fe-A). Surface morphological study reveals Al-A has higher surface area as the surface is rough and wrinkled as compared to the more compact surface of Fe-A. TPD-NH3 shows acidity of Al-A is 1.5 times higher than Fe-A. Catalytic activity screening test showed that Al-A catalyzed esterification renders highest polyol ester yield of 100% (monoester: 40.2% and diester: 59.8%) under 15 wt% of catalyst, 6 h, 0.5:1 molar ratio of NPG:AcA and 100 degrees C, as compared to Fe-A catalyst. The presence of Lewis acid site from Al3+ ion played a major role in esterification process. In additional, the Al-A catalyst rendered significant reusability up to 3 consecutive cycles with ester yield above 85%. (C) 2017 Institution of Chemical Engineers. Published by Elsevier B.V. All rights reserved.
机译:最近的研究已经成功地合成了植物油原产物的多元醇酯,用于施用Biolubriant,虽然是可生物降解的,但遇到了食物链中断的挑战。因此,生物质衍生的生物油是在施用生物润滑剂生产中生产多元醇酯的潜在替代方案。由于其高氧含量和低储存稳定性,在Bio油准备用作生物润滑剂之前,需要进一步提高酯化如酯化。乙酸(ACA),在生物 - 聚合物酸催化剂,丙酸铝(Al-A)和铁藻酸铝(Fe-A)存在下,使用在生物油中的主要组分用新戊二醇(NPG)进行催化酯化。 。表面形态学研究显示,与Fe-a的更紧凑的表面相比,表面的形态学研究表明Al-A具有较高的表面积。 TPD-NH3显示Al-A的酸度比Fe-a高1.5倍。催化活性筛选试验表明,在15wt%的催化剂,6h,0.5:1摩尔比的15wt%下,Al-A催化剂酯化率为100%(单酯:40.2%和二酯:59.8%)的最高多元醇酯产率为100%(单酯:40.2%和二酯:59.8%):ACA和与Fe-A催化剂相比,100℃。来自Al3 +离子的Lewis酸部位的存在在酯化过程中发挥了重要作用。在另外,Al-A催化剂可重复可重复使用,其具有高于85%以上的酯产率的3个连续循环。 (c)2017年化学工程师机构。 elsevier b.v出版。保留所有权利。

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