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首页> 外文期刊>British Journal of Applied Science and Technology >Use of Fourier Transformation Infrared (FTIR)Spectroscopy for Analysis of Functional Groups inPeanut Oil Biodiesel and Its Blends
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Use of Fourier Transformation Infrared (FTIR)Spectroscopy for Analysis of Functional Groups inPeanut Oil Biodiesel and Its Blends

机译:傅里叶变换红外(FTIR)光谱分析花生油生物柴油及其混合物中的官能团

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Aims: The paper studied how fourier transformation infra-red (FTIR) spectroscopy can be used to monitor homogenous alkali catalyzed alcoholysis of peanut oil and methanol to produce biodiesel. The spectrum generated was used to identify the functional groups in the fuel sample for qualitative analysis and associated type of vibrations. Analyses on biodiesel blends with fossil diesel were also carried out with FTIR spectroscopy.Place and Duration of Study: Department of Mechanical Engineering, Federal University of Technology, Akure, Ondo State, Nigeria, between December 2014 and March 2015.Methodology: Biodiesel was produced by transesterifying peanut oil with methanol in the presence of sodium hydroxide as catalyst. Molar ratio of 6:1 (methanol to oil) was followed to shift the reaction to product side for more yield of fatty acid methyl esters (FAME) and the use of catalyst enabled the reaction to proceed faster. The oil and biodiesel were characterized following ASTM standards. The biodiesel obtained was separated from glycerol, washed with distilled water and dried. Biodiesel blends with fossil diesel from 10% v/v to 90% v/v in a step of 10% were produced. Samples of biodiesel and biodiesel blends were scan within mid-infrared region of 4000 cm-1 – 400 cm-1 with fourier transform infrared spectrometer by agilent technologies. The spectra obtained were interpreted and analyzed with the aid of structure correlation chart. A visual basic computer program was developed based on the data analyzed and experience gained.Results: The results revealed that the biodiesel contained fatty acid methyl esters (FAME). The FTIR spectrum for the biodiesel revealed the functional groups with characteristics bands, C=O, -(CH2)n-, C-O, C=C and C-H in the spectrum. The absorbance intensity (peak), at a region where strong absorption of FAME occurred in each blend spectrum increases with biodiesel concentration when verified with Beer’s law and the R2 value of 0.992 was obtained to show good fitting. Changes of transmittance with concentration and absorbance of blend spectra explored showed that transmittance decreases with both concentrations and absorbance and the R2 values of 0.991 and 0.997 were obtained respectively.Conclusion: Catalyzed complete transesterification was performed on the peanut oil and methanol. The biodiesel produced contained an ester functional group and showed that it can be used as a substitute for fossil diesel in diesel engines. The biodiesel is miscible with fossil diesel and blending of any biodiesel concentration can be obtained. The computer program developed can help to identify the functional groups of similar fuels and associated type of vibrations at a given wavenumber within mid-infrared region.
机译:目的:本文研究了如何利用傅立叶变换红外光谱(FTIR)监测花生油和甲醇的均相碱催化醇解反应,以生产生物柴油。产生的光谱用于鉴定燃料样品中的官能团,以进行定性分析和相关的振动类型。研究的地点和持续时间:2014年12月至2015年3月之间,尼日利亚昂多州阿库雷市联邦技术大学机械工程系,研究地点和持续时间:方法:生产生物柴油在氢氧化钠作为催化剂的存在下,用甲醇使花生油进行酯交换反应。摩尔比为6:1(甲醇与油),将反应移至产物侧,以提高脂肪酸甲酯(FAME)的收率,使用催化剂可使反应进行得更快。石油和生物柴油的特性符合ASTM标准。将获得的生物柴油与甘油分离,用蒸馏水洗涤并干燥。生产的生物柴油与化石柴油的掺混物以10%的步长从10%v / v到90 %% v / v。使用安捷伦技术,通过傅立叶变换红外光谱仪在4000 cm-1 – 400 cm-1的中红外区域扫描生物柴油和生物柴油混合物的样品。借助结构相关图对获得的光谱进行解释和分析。根据所分析的数据并获得经验,开发了一个可视化的基本计算机程序。结果:结果表明该生物柴油含有脂肪酸甲酯(FAME)。生物柴油的FTIR光谱显示了带有特征谱带的官能团,谱带为C = O,-(CH2)n-,C-O,C = C和C-H。经比尔定律验证,在每个掺和光谱中发生强烈FAME吸收的区域的吸收强度(峰值)随生物柴油浓度的增加而增加,R2值为0.992,显示出良好的拟合度。研究了透射率随掺合物浓度和吸光度的变化,表明透射率随浓度和吸光度均降低,R2值分别为0.991和0.997。结论:花生油和甲醇催化完全酯交换反应。所生产的生物柴油含有酯官能团,表明可以用作柴油发动机中化石柴油的替代品。该生物柴油可与化石柴油混溶,并且可以混合任何浓度的生物柴油。开发的计算机程序可以帮助识别中红外区域内给定波数下的相似燃料的功能组和相关的振动类型。

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