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Enhanced conversion of Glycerol to Glycerol carbonate on modified Bio-Char from reed plant

机译:从芦苇植物改性生物炭甘油转化为甘油转化为甘油碳酸盐

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摘要

The surplus glycerol produced from biodiesel production process as a by-product with high quantity can be considered as a good source to prepare glycerol carbonate (GC) whereas with each 1000 kg from biodiesel obtains 100 kg from glycerol. Glycerol converted to glycerol carbonate over bio-char as a catalyst prepared by slow pyrolysis process under various temperatures from 400 ᴼC to 800 ᴼC. The char prepared at 700 ᴼC considered as a best one between the others which was manufactured to activate the transesterification reaction. GC have large scale of uses such as liquid membrane in gas separation, surfactants ,detergents , blowing agent , in plastics industry, in  Pharmaceutical industry and electrolytes in lithium batteries. Yield percent of GC is 9.3% without catalyze the reaction with char whereas in case of bio-char used the GC yield increases to 67.80%. When the catalyst modified with 3 molar concentration of sodium hydroxide, the yield of glycerol carbonate obtained 98.3% and complete conversion. All the reaction in this study performed under conditions 60ᴼC, 90 min, 3:1 DMC:G and 3%wt. catalyst loading.
机译:从生物柴油生产过程中产生的含量甘油作为高量的副产物可以被认为是制备甘油碳酸酯(GC)的好源,而来自生物柴油的每1000kg,从生物柴油中获得100kg。通过在400μC至800℃的各种温度下通过缓慢热解过程转化为甘油碳酸酯作为通过缓慢热解过程制备的催化剂。在700˚C中制备的炭被认为是制造用于激活酯交换反应的其他形式的最佳。 GC具有大规模的液体膜,如气体分离,表面活性剂,洗涤剂,发泡剂,在塑料工业中,制药工业和锂电池的电解质。 GC的产量百分比为9.3%,无需催化与焦炭的反应,而在生物炭的情况下,GC产量增加到67.80%。当用3摩尔浓度的氢氧化钠改性催化剂时,碳酸甘油碳酸酯的产率为98.3%并完全转化。本研究中的所有反应在60℃,90分钟,3:1 DMC:G和3%wt条件下进行。催化剂负载。

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