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利用从啤酒厂废料中提取的催化剂将低价值工业废料转化为生物柴油:活化和失活动力学研究。

Conversion of a low value industrial waste into biodiesel using a catalyst derived from brewery waste: An activation and deactivation kinetic study.

机构信息

Department of Chemical Engineering, Nandha Engineering College, Erode 638052, India.

Department of Mechanical Engineering, Government College of Technology, Coimbatore 641013 India.

出版信息

Waste Manag. 2019 Dec;100:318-326. doi: 10.1016/j.wasman.2019.09.030. Epub 2019 Sep 28.

Abstract

In this study, biodiesel was produced by using a heterogeneous acid catalyst made from brewer's spent yeast (BSY). BSY was initially activated by phosphoric acid followed by carbonization in inert atmosphere and sulfonation process to prepare the catalyst. It is completely characterized using sophisticated instruments to determine its physical and chemical properties. Subsequently, the effectiveness of the catalyst was analyzed by subjecting it to sonochemical esterification of an industrial low value waste product, palm fatty acid distillate (PFAD). The reactions were performed in the presence of ultrasound at a constant frequency of 25 kHz. An optimum methyl ester conversion of 87.8% was achieved at 8 wt% of catalyst, 21:1 methanol to PFAD molar ratio, 65 °C and 180 min of reaction time. The catalyst displayed a high catalytic stability up to four cycles due to firm SOH functional group attached onto the surface. Furthermore, a novel sonochemical kinetic model was proposed for surface esterification reaction on the catalyst. The reaction rate was found and it followed a pseudo-first-order reaction mechanism. Furthermore, a deactivation model was also proposed to account for the loss of activity upon catalyst reuse during sonochemical reaction.

摘要

在这项研究中,使用一种由酿酒废酵母(BSY)制成的非均相酸催化剂来生产生物柴油。BSY 首先用磷酸活化,然后在惰性气氛中碳化和磺化,以制备催化剂。使用精密仪器对其进行了全面的特性分析,以确定其物理和化学性质。随后,通过超声处理工业低值废产物棕榈脂肪酸馏分(PFAD)来分析催化剂的有效性。在 25 kHz 的恒定频率下进行反应。在 8 wt%的催化剂、21:1 的甲醇与 PFAD 的摩尔比、65°C 和 180 分钟的反应时间下,达到了 87.8%的最佳甲酯转化率。由于牢固附着在表面上的 SOH 官能团,催化剂显示出高达四轮的高催化稳定性。此外,还提出了一种用于催化剂表面酯化反应的新型超声动力学模型。发现了反应速率,并遵循准一级反应机制。此外,还提出了失活动力学模型,以解释在超声反应中催化剂重复使用时活性的损失。

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