Trans-Esterification Optimization Process for Biodiesel Production from Palm Kernel Oil using Response Surface Methodology

T. O. Rabiu, N. A. Folami, N. Badiru, N.A. Kinghsley, B. T. Dare, I. A. Adigun
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Abstract

The ever-growing concern for the safety of lives and the environment as well as the depletion in fossil fuels reserves across the globe has led to the keen interests of many researchers in the field of renewable energy. This study was therefore undertaken to investigate the trans-esterification optimization process for biodiesel production from palm kernel using response surface methodology. The materials for the trans-esterification processes were palm kernel oil, Methanol and sodium hydroxide. The effects of reaction temperature (oC), catalyst concentration (wt%) and reaction time (min) on the yield were evaluated. The properties of the biodiesel produced showed that it met the ASTM standard for biodiesel. A quadratic polynomial model, Yield (%) = 78.60–3.12A–.62B + 0.00C -0.75AB – 3.50AC + 1.50BC + 2.82A2– 0.18B2 + 1.08C2, was developed that can be used to predict yield of biodiesel at any value of the different parameters investigated. The ANOVA for the model of the biodiesel yield obtained indicates that the models fit well in describing the relationship between the predictor (biodiesel yield) and the factors (methanol to oil ratio, catalyst concentration and reaction time). The optimal trans-esterification conditions were found to be 60°C for temperature, 60minutes for reaction time, 0.878w% of oil as Sodium hydroxide (catalyst) concentration and methanol/oil ratio of 1:6. At these optimal conditions, the biodiesel yield was fond to be 89.32% The generated biodiesel had high cetane number, better engine ignitability and poses lesser pollution problems than petroleum diesel.
响应面法优化棕榈仁油反式酯化生产生物柴油工艺
随着人们对生命安全和环境的日益关注,以及全球化石燃料储量的日益枯竭,可再生能源领域引起了许多研究人员的浓厚兴趣。因此,本研究采用响应面法研究棕榈仁反式酯化优化生产生物柴油的过程。反式酯化反应的原料为棕榈仁油、甲醇和氢氧化钠。考察了反应温度(oC)、催化剂浓度(wt%)和反应时间(min)对产率的影响。制备的生物柴油性能符合ASTM生物柴油标准。采用二次多项式模型,Yield (%) = 78.60-3.12A -。62B + 0.00C -0.75 ab - 3.50AC + 1.50BC + 2.82A2 - 0.18B2 + 1.08C2,可用于预测不同参数下生物柴油的产率。所得生物柴油产率模型的方差分析表明,该模型很好地描述了预测因子(生物柴油产率)与影响因子(甲醇油比、催化剂浓度和反应时间)之间的关系。结果表明,反式酯化反应的最佳条件为温度60℃,反应时间60min,氢氧化钠(催化剂)浓度为0.878w%,甲醇/油比为1:6。在此条件下,生物柴油的产率可达89.32%,与石油柴油相比,生物柴油十六烷值高,发动机可燃性好,污染小。
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