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Transesterification of waste edible oils to biodiesel using calcium oxide@magnesium oxide nanocatalyst

机译:使用氧化钙氧化镁纳米催化剂将废食用油对生物柴油的酯交换

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In the present research, application of waste edible oil (WEO) as a suitable and abundant source for biodiesel production using CaO@MgO nanocatalyst derived from waste chicken eggshells was studied. To this end, FT-IR, XRD, SEM, EDX, Map, and TEM analyses were performed to investigate characteristics of the CaO@MgO nanocatalyst. Also, the physical properties of the biodiesel such as flash point, kinematic viscosity, density, distillation point, cloud point, pour point, cetane number, oxidation stability, and acid number were determined according to the international standards. In addition, FT-IR and HNMR analyses were used to determine the biodiesel characteristics. Moreover, the produced catalyst was successively reused for up to 6 cycles and the results showed that the catalytic activity of the catalyst produced was sufficient for biodiesel production from WEO for up to three cycles, beyond which its catalytic activity decreased. The present work further considered the effects of different parameters on biodiesel production using central composite design to determine optimal conditions. According to the results, the highest biodiesel conversion yield (98.37%) was achieved in a reaction time of 7.08 h, reaction temperature of 69.37 °C, methanol-to-oil ratio of 16.7:1, and catalyst concentration of 4.571 wt% which shows the highest biodiesel conversion yield ever achieved from waste edible oil.
机译:在本研究中,研究了废物食用油(WEO)作为使用源自废鸡蛋壳的CAO @ MgO纳米催化剂的生物柴油生产的合适和丰富来源。为此,进行FT-IR,XRD,SEM,EDX,MAP和TEM分析以研究CaO @ MgO纳米催化剂的特征。此外,根据国际标准确定了闪点,运动粘度,密度,蒸馏点,浊点,倾点,十六烷数,氧化稳定性和酸数等生物柴油。此外,使用FT-IR和HNMR分析来确定生物柴油特性。此外,所生产的催化剂连续重复使用最多6个循环,结果表明,所产生的催化剂的催化活性足以从WeO延长到三个循环的生物柴油生产,其催化活性降低。目前的作品进一步考虑了使用中央复合设计的不同参数对生物柴油生产的影响,以确定最佳条件。根据结果​​,在7.08小时的反应时间,反应温度为69.37℃,甲醇 - 油比为16.7:1的反应时间,催化剂浓度为4.571重量%的反应时间,最高的生物柴油转化率(98.37%)。显示了从废食用油中实现的最高生物柴油转化率。

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