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Synthesis of magnetically solid base catalyst of NaOH/Chitosan-Fe_3O_4 for biodiesel production from waste cooking oil: Optimization, kinetics and thermodynamic studies

机译:废料烹饪油废弃物生产中NaOH / Chotosan-Fe_3O_4磁固基催化剂的合成:优化,动力学和热力学研究

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摘要

In this research, biodiesel was produced from waste cooking oil (WCO) via a magnetically and biodegradable heterogeneous base catalyst of NaOH/Chitosan-Fe3O4. The catalyst was characterized using X-ray powder diffraction (XRD), Field Emission Scanning Electron Microscopy (FESEM), Energy Dispersive X-Ray (EDX), EDX-mapping, Vibrating-Sample Magnetometer (VSM), Brunauer-Emmett-Teller (BET), Transmission Electron Microscopy (TEM), and Fourier-transform infrared spectroscopy (FTIR) analyses. The catalyst performance was also studied in the transesterification reaction of WCO conversion to biodiesel. The process was optimized via the central composite design (CCD) through the response surface methodology (RSM) method. The influences of major factors, including methanol to oil molar ratio (6:1-12:1), catalyst weight (0.25-1 wt%), and time (4-8 h), were examined on the reaction behavior. The maximum FAME yield was 92% under the following optimal conditions: 0.5 wt% NaOH/Chitosan-Fe3O4 catalyst, methanol to oil ratio of 6:1, reaction time of 4.5 h, and temperature of 25 degrees C. The Gas Chromatography-Mass Spectrometry (GC-MS) and Inductively Coupled Plasma-Optical Emission Spectroscopy (ICP-OES) were used to determine the fatty acid profile and metal contents of samples, respectively. Based on the physicochemical properties, it was concluded that the produced biodiesel had the same properties as conventional petro-diesel. Further, a kinetic study revealed that the electrolysis method was a situ-transesterification reaction with a pseudo-first-order kinetics and activation energy of 21 kJ/mol. From the thermodynamic calculations, the values of Delta S, Delta H, and Delta G were found to be 0.23 kJ/mol K, 18.20 kJ/mol, and 95.13 kJ/mol, respectively.
机译:在该研究中,通过NaOH / Chotosan-Fe3O4的磁性和可生物降解的异质基催化剂从废物烹饪油(WCO)生产生物柴油。用X射线粉末衍射(XRD),场发射扫描电子显微镜(FESEM),能量分散X射线(EDX),EDX映射,振动样品仪(VSM),Brunauer-emmett-exerser( BET),透射电子显微镜(TEM)和傅里叶变换红外光谱(FTIR)分析。还在WCO转化转化为生物柴油的酯交换反应中研究了催化剂性能。该过程通过中央复合设计(CCD)通过响应面方法(RSM)方法进行了优化。在反应行为上检查主要因素,包括甲醇与油摩尔比(6:1-12:1),催化剂重量(0.25-1wt%)和时间(4-8小时)的影响。在以下最佳条件下最大名称产率为92%:0.5wt%NaOH /壳聚糖-FE3O4催化剂,甲醇与6:1,反应时间为4.5小时,温度为25℃。气相色谱 - 质量光谱法(GC-MS)和电感耦合等离子体光发射光谱(ICP-OES)分别用于确定样品的脂肪酸曲线和金属含量。基于物理化学特性,得出结论,所生产的生物柴油具有与常规石油柴油的特性相同。此外,动力学研究表明,电解方法是原位酯交换反应,其与伪第一阶动力学和21kJ / mol的活化能。从热力学计算中,发现δ,ΔH和δg的值分别为0.23kJ / mol k,18.20kJ / mol和95.13 kJ / mol。

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