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动力学和热力学研究过 SO H 功能化的桉树树皮生物炭催化剂酯化油酸。

Kinetic and thermodynamic study on the esterification of oleic acid over SOH-functionalized eucalyptus tree bark biochar catalyst.

机构信息

Department of Chemical and Petroleum Engineering, College of Engineering, Afe Babalola University, Ado-Ekiti, Nigeria.

出版信息

Sci Rep. 2022 May 23;12(1):8653. doi: 10.1038/s41598-022-12539-0.

Abstract

Herein, esterification of oleic acid (OA) over tosylic acid functionalized eucalyptus bark biochar (TsOH-MBC) to synthesize fatty acid methyl ester (FAME) was investigated. The TsOH-MBC catalyst was prepared via pyrolysis-activation-sulfonation process at various impregnation ratios and was characterized by SEM, FTIR, EDX, XRD, BET, TGA and acid site density techniques. The catalytic performance of the sulfonated biochar catalyst was described in terms of acidity and FAME yield. 6 g of sulfonic acid loaded on 10 g of MBC (6TsOH-MBC) appeared to be most appropriate combination to achieve a highly active catalyst for the esterification of OA with 96.28% conversion to FAME at 80 °C for 5 h with catalyst loading of 4.0 wt% and 8:1 methanol/OA molar ratio. The catalytic reaction kinetic data were very well described by the second-order model, with a rate coefficient of 0.223 mL mol h at 80 °C and activation energy of 81.77 kJ mol. The thermodynamic parameters such as [Formula: see text], [Formula: see text] and [Formula: see text] were determined to be 78.94 kJ mol, 135.3 J mol K and 33.03 kJ mol, respectively. This research provided an environmentally friendly procedure for FAME production that could be replicated on a commercial scale.

摘要

本文研究了通过酯化油酸(OA)在对甲基苯磺酸功能化的桉树木屑生物炭(TsOH-MBC)上合成脂肪酸甲酯(FAME)。TsOH-MBC 催化剂通过在不同浸渍比下的热解-活化-磺化过程制备,并通过 SEM、FTIR、EDX、XRD、BET、TGA 和酸位密度技术进行了表征。磺酸基生物质炭催化剂的催化性能通过酸度和 FAME 产率来描述。在 80°C 下,6g 磺酸负载在 10g MBC(6TsOH-MBC)上,以 4.0wt%的催化剂负载量和 8:1 的甲醇/OA 摩尔比,5 小时内 OA 的转化率达到 96.28%,似乎是获得高活性酯化催化剂的最佳组合。催化反应动力学数据非常好地用二级模型描述,在 80°C 时速率系数为 0.223mLmolh,活化能为 81.77kJmol。确定了热力学参数[Formula: see text]、[Formula: see text]和[Formula: see text]分别为 78.94kJmol、135.3JmolK 和 33.03kJmol。这项研究为 FAME 的生产提供了一种环保的方法,可以在商业规模上进行复制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4743/9126883/e0e68f147f7b/41598_2022_12539_Fig1_HTML.jpg

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